Perrette
Building science · Energy

Mechanical systems.

From the real building to the OpenStudio model. Every item is described three times: what it physically is, what job it does in the building, and how it is set up in the model.

Working document · v1 · August 2026 · grows with the tools

0. How to read this document

Three layers, in this order.

  • Part 1 — Fundamentals. The mental model that makes everything else readable. Five stages, two sides, four water temperature regimes. Ten pages that save months of confusion.

  • Part 2 — Component catalogue. Each building block on its own: the air handler, the coil, the fan, the chiller, the pump. A short physical description, then what you can actually set on it in OpenStudio.

  • Parts 3 and 4 — System fiches. The complete assemblies, ordered by increasing complexity. Every fiche answers the same questions in the same order, including "where it is used and why" and "does it use more or less energy than the reference".

Parts 5 and 6 cover controls and reference appendices.

The structure of a system fiche

Block What it gives you
Single-line The path of the air or the water, in one diagram. The base mental image.
What you would see What you would actually find walking the building. Size, sound, location.
The problem it solves Why this system exists, and what it is an improvement on.
Where it is used Building type, size, climate zones, and the physical reason.
Relative energy use An indicative index against the reference, to build intuition.
Building it in OpenStudio The sequence of objects to create, in order.
What you can set The parameters, the matching E+ object, the typical value, the impact.
Classic mistakes What goes wrong systematically on this specific system.
What to check after the run How to know whether the model is doing what you think it is.

On the energy indices. They are indicative and exist to build intuition, not to predict. The reference of 100 is a VAV system with terminal reheat, chiller and boiler, set up conventionally and not optimised. The real gap depends on climate, internal loads and above all on controls: two identical VAV systems can differ by 40% on box minimums and resets alone.

1. Fundamentals

1.1 The five stages

Every HVAC system on earth is some arrangement of these five stages. When you look at an unfamiliar system, identify them one by one and it becomes readable.

# Stage The question it answers The hardware
1 Load How much heat must enter or leave each room, and when? None — this is the building
2 Terminal / emission How does heat actually get into the room air? Diffusers, VAV boxes, fan coils, radiators, radiant floors
3 Distribution How does energy travel from the plant room to the room? Ducts + fans, pipes + pumps, refrigerant lines
4 Generation Where are heating and cooling actually produced? Chillers, boilers, heat pumps, DX coils
5 Rejection / source Where does waste heat go, or where does heat come from? Cooling towers, air-cooled condensers, ground loops

Two orthogonal questions then define almost any system:

  • What is the transport medium? All-air, all-water, air-water, or refrigerant.

  • Is ventilation coupled to or decoupled from thermal conditioning? A VAV system does both with the same air stream (coupled). A DOAS plus fan coils separates them (decoupled). This is the great dividing line between older systems and high-performance ones.

If you can answer those two questions about a system, you already understand most of it.

1.2 Supply side and demand side

This is the most important structural idea in HVAC modelling, and it is shared between the way engineers talk and the internal architecture of EnergyPlus.

Loop Supply side (what produces) Demand side (what consumes)
Air loop The AHU: mixing box, coils, fan The thermal zones and their air terminals
Plant loop (chilled water) Pumps, chillers Cooling coils, beams, radiant surfaces
Plant loop (hot water) Pumps, boilers, heat pumps Heating coils, baseboards, VAV reheat coils
Condenser loop Cooling tower, ground heat exchanger The chiller condenser, water-source heat pumps

Note the recursion: a water-cooled chiller is supply-side equipment on the chilled water loop and demand-side equipment on the condenser loop. That single sentence explains most of the confusion beginners have with plant modelling.

1.3 Water temperature regimes

The whole hydronic story is told in temperatures. Every drop in regime makes one technology possible and rules another out. It is the backbone of design, and it is the first thing to ask when someone describes an installation to you.

Regime (°F) Loop What it implies
180 / 160 Hot water Traditional boiler. Small pipes, small coils. A condensing boiler on this regime never condenses: the most common contradiction in the field.
140 / 120 Hot water Condensing over a good part of the season. Larger coils and pipes.
120 / 95 Hot water The domain of air-to-water heat pumps. Forces every emitter to be oversized. This is the real hidden cost of hydronic electrification.
44 / 56 Chilled water The US standard. The 44 °F is what makes dehumidification possible.
45 / 60 and wider Chilled water Wide delta-T: less flow, less pumping. Needs larger coils.
55 / 60 Chilled water The regime of chilled beams and radiant cooling. Above dew point, so no dehumidification at all: a DOAS is mandatory.
85 / 95 Condenser The cooling tower standard, for a 78 °F design wet bulb.
60 – 90 WSHP loop A tempered loop each zone heat pump draws from or rejects into.

1.4 Units and the three constants

Unit Meaning Rule of thumb
Ton 12,000 Btu/h of cooling = 3.517 kW Office ≈ 300–400 ft² per ton
MBH 1,000 Btu/h (M is Roman thousand, not mega) 100 MBH = 29.3 kW
CFM Cubic feet per minute of air 1 cfm ≈ 0.472 L/s
in. w.c. Inches of water column (pressure) 1 in. w.c. = 249 Pa
COP Coefficient of performance, W/W The physicist’s metric
EER Btu/h per W, at one rating point COP = EER / 3.412
kW/ton Chiller efficiency (inverse) kW/ton = 3.517 / COP; 0.55 is good, water-cooled
AFUE / Et Annual fuel utilization (residential) / thermal efficiency (commercial) Do not mix them up in a code discussion
SHR Sensible share of total cooling 0.7–0.8 on an office coil
EUI kBtu/ft²·yr High-performance office: 25–40

The three constants every American engineer assumes you know:

Q_sensible (Btu/h) = 1.08 x cfm x deltaT (F)

Q_total (Btu/h) = 4.5 x cfm x delta_enthalpy (Btu/lb)

Q_water (Btu/h) = 500 x gpm x deltaT (F)

The 1.08 / 4.5 / 500 coefficients bundle air density and specific heat in IP units. They are used from memory, every day, in every meeting.

2. The component catalogue

Each building block on its own. The goal of this part is that you can name and locate any object in a plant room, and know what it becomes in the model.

2.1 Air side — inside the box

AHU — Air Handling Unit

In the real world A sheet-metal cabinet, anywhere from the size of a refrigerator to the size of a shipping container, in a plant room or on the roof. Air enters one end, gets filtered, heated or cooled, and is blown out the other end into ductwork. Sound: a continuous low rumble. It is the most common piece of equipment in commercial buildings.

Job Condition and move air. Everything else on the air side follows from it.

In OpenStudio An AHU is not one object. It is an AirLoopHVAC whose supply side contains a sequence of components in a precise order: outdoor air system, then coils, then fan. You build it piece by piece.

What you set E+ object / field Typical value Impact
Design airflow Sizing:System / Design Supply Air Flow Rate Autosize Very high
Supply air temperature Sizing:System / Central Cooling Design Supply Air Temp 55 °F Very high
Operating mode Fan object type (VAV or CAV) VAV or CAV Very high
Availability AvailabilityManagerAssignmentList Schedule + night cycle High

Mixing box and outdoor air system

In the real world The section where return air from the building meets outdoor air, controlled by two or three motorised dampers. From the roof, this is the intake louvre and the relief hood.

Job Blend recirculated and fresh air to meet the ventilation code at the lowest energy cost. A huge share of all energy savings lives here.

In OpenStudio AirLoopHVAC:OutdoorAirSystem, containing OutdoorAir:Mixer (the physical mixing) and Controller:OutdoorAir (the logic, including economizer operation).

What you set E+ object / field Typical value Impact
Minimum outdoor air Controller:OutdoorAir / Minimum Outdoor Air Flow Autosize via 62.1 Very high
Calculation method Controller:MechanicalVentilation / System OA Method Standard62.1VRP High
Per-space requirement DesignSpecification:OutdoorAir 5 cfm/person + 0.06 cfm/ft² High
Air distribution effectiveness DesignSpecification:ZoneAirDistribution 1.0 cooling / 0.8 heating Medium
Unoccupied closure Minimum Outdoor Air Schedule Closed at night High

Damper

In the real world Pivoting metal blades inside a duct, driven by an actuator. Parallel blade: poor throttling, good for two-position service. Opposed blade: acceptable linear control, which is what you use for modulation.

Job Control how much air goes where.

In OpenStudio Almost never an explicit object. Dampers are implicit inside Controller:OutdoorAir and inside the terminal unit objects. You model their effect — an airflow fraction — not the hardware.

Filter

In the real world A rack of pleated media. Rated by MERV from 1 to 16; MERV 13 became the commercial baseline after COVID, MERV 8 was the old default. HEPA is a separate class, labs and healthcare.

Job Particulate removal.

In OpenStudio No object. A filter only exists energetically through the pressure drop it adds, which you bury in the fan static. A dirty MERV 13 adds 0.5 to 1.0 in. w.c., which is very real.

Coil

In the real world A matrix of copper tubes with aluminium fins sitting in the air stream, with water, refrigerant or steam inside. Vocabulary: rows (4, 6, 8), fins per inch (8 to 14), face velocity (400 to 550 fpm — above that, condensed water blows off the coil into the duct).

Job Transfer heat between the air and the fluid. A cooling coil does sensible and latent work because its surface is below dew point; a heating coil is sensible only.

In OpenStudio One object per technology. Placement in the sequence matters as much as the values.

What you set E+ object / field Typical value Impact
Chilled water cooling Coil:Cooling:Water Autosize Very high
DX cooling Coil:Cooling:DX:SingleSpeed / :VariableSpeed COP + curves Very high
Hot water heating Coil:Heating:Water Autosize High
Gas heating section Coil:Heating:Fuel Efficiency 0.80 High
Electric resistance Coil:Heating:Electric Efficiency 1.0 High
Preheat Coil:Heating:* + SetpointManager Setpoint 45 °F Medium

Fan

In the real world An impeller in a housing. Centrifugal fans dominate AHUs, axial fans dominate exhaust and condensers. Modern AHUs use housingless plug fans, sometimes as an array of several small fans (fan wall).

Job Create the pressure difference that pushes air through ducts, coils and filters.

In OpenStudio Fan:SystemModel is the modern unified object and what you should use for new work. The legacy objects (Fan:ConstantVolume, Fan:VariableVolume, Fan:OnOff) live on in older files.

What you set E+ object / field Typical value Impact
Total static pressure Fan:SystemModel / Design Pressure Rise 3–5 in. w.c. on VAV Very high
Total efficiency Fan:SystemModel / Fan Total Efficiency 0.55–0.70 Very high
Specific fan power Equivalent in W/cfm 0.6 good, 0.8 typical, 1.2 poor Very high
Part-load curve Electric Power Function of Flow Curve Cubic with a VFD High
Motor heat to air Motor In Airstream Fraction 1.0 if the motor is in the stream Medium

Economizer (air side)

In the real world Not a device — a control strategy implemented with the dampers you already have.

Job When outdoor air is cooler or drier than return air, open beyond the ventilation minimum and cool for free instead of running the chiller. In a marine climate this covers most of the cooling season.

In OpenStudio Fields on Controller:OutdoorAir, not a separate object.

What you set E+ object / field Typical value Impact
Control type Economizer Control Type DifferentialDryBulb Very high
High limit Economizer Maximum Limit Dry-Bulb Temp 70–75 °F by climate zone High
Lockout Lockout Type LockoutWithHeating Medium
Maximum opening Maximum Outdoor Air Flow Rate 100% of design flow High

Energy recovery (ERV / HRV)

In the real world A device that transfers heat between exhaust and intake. Enthalpy wheel (sensible and latent, 70–80%, turns slowly, slight cross-leakage), sensible wheel, fixed plate exchanger (no mixing, mandatory where exhaust is contaminated), heat pipe, runaround glycol loop (45%, but the two streams can be far apart).

Job Collapse the energy cost of ventilation air. Required above certain airflow and operating-hour thresholds.

In OpenStudio HeatExchanger:AirToAir:SensibleAndLatent, placed in the equipment list of the AirLoopHVAC:OutdoorAirSystem.

What you set E+ object / field Typical value Impact
Sensible effectiveness Sensible Effectiveness at 100% Heating 0.70–0.80 wheel Very high
Latent effectiveness Latent Effectiveness at 100% Heating 0.65–0.75 enthalpy wheel High
Parasitic power Nominal Electric Power Wheel motor Medium
Frost control Frost Control Type ExhaustOnly Medium
Economizer bypass Economizer Lockout Yes High

Humidification and dehumidification

In the real world Steam grid, evaporative media or ultrasonic atomiser to humidify. To dehumidify: overcool then reheat, or a desiccant wheel.

Job Hold relative humidity. Museums, labs, healthcare, data centres, print shops. In most offices in a marine climate, nobody humidifies.

In OpenStudio Humidifier:Steam:Electric with SetpointManager:SingleZone:Humidity:Minimum. For dehumidification, a setpoint manager on the cooling coil plus reheat, or Dehumidifier:Desiccant:System.

2.2 Air side — out in the building

Ductwork

In the real world Galvanised sheet metal, round or rectangular, sometimes internally lined, with flex duct on the last few feet. Vocabulary: main, branch, runout, takeoff, transition, elbow, turning vanes, balancing damper, fire and smoke damper, shaft, riser.

Job Distribute air. And in practice, determine whether your fan static assumption was realistic.

In OpenStudio Ducts are not modelled geometrically. Their effect shows up in fan pressure rise, and optionally as thermal loss through AirflowNetwork.

Return plenum

In the real world Instead of ducting the return, air is dumped into the space above the ceiling tiles, which acts as a large return duct back to the shaft.

Job Save the return duct network. And capture part of the heat from recessed lighting before it reaches the space, which reduces cooling load.

In OpenStudio AirLoopHVAC:ReturnPlenum, with the plenum defined as its own ThermalZone. It interacts with the Return Air Fraction field on the Lights object.

Diffusers, grilles, registers

In the real world The visible fixture at the room boundary. Diffuser = supply, shaped to induce room air and avoid drafts. Grille = return, fixed blades. Types: square ceiling, linear slot, swirl, displacement (low velocity at floor level), underfloor swirl outlet.

Job Deliver air into the occupied zone at an acceptable velocity and throw.

In OpenStudio Normally not modelled at all — the zone is assumed well mixed. For displacement ventilation or underfloor air, you switch the zone air model: RoomAirSettings:ThreeNodeDisplacementVentilation or RoomAirSettings:UnderFloorAirDistributionInterior.

VAV box (terminal unit)

In the real world A box about the size of a carry-on suitcase, above the ceiling near each zone. Contains a damper, an airflow sensor, a controller and often a small reheat coil. Failure symptom: the whistling in a meeting room is a damper hitting its stop.

Job Throttle the airflow to a single zone from its thermostat, while one central AHU supplies cold air to dozens of boxes at once.

In OpenStudio One AirTerminal object per type. Choosing the type is a design decision, not a detail.

What you set E+ object / field Typical value Impact
VAV with reheat AirTerminal:SingleDuct:VAV:Reheat Very high
VAV cooling only AirTerminal:SingleDuct:VAV:NoReheat Interior zones High
Series fan-powered AirTerminal:SingleDuct:SeriesPIU:Reheat Constant flow to the room High
Parallel fan-powered AirTerminal:SingleDuct:ParallelPIU:Reheat Fan on in heating only High
Minimum flow Zone Minimum Air Flow Fraction 0.15 good; 0.30–0.50 legacy Very high
Max flow during reheat Maximum Flow Fraction During Reheat 0.3–0.5 High

2.3 Water side — the central plant

Chiller

In the real world A machine producing chilled water, typically at 44 °F. Compressor, evaporator, condenser, expansion device. Scroll up to 200 tons, screw 100 to 500, centrifugal 200 to 3000+. A 500-ton centrifugal weighs about five tons and does not fit through a standard door, which is why plant rooms have knockout panels.

Job Make the building’s cooling. Air-cooled (simple, 1.0–1.2 kW/ton) or water-cooled with a tower (0.5–0.6 kW/ton, but tower, pumps and water treatment).

In OpenStudio Chiller:Electric:EIR for most cases. Chiller:Electric:ReformulatedEIR is better for a centrifugal machine because its curves use leaving condenser water temperature, the way manufacturers publish data.

What you set E+ object / field Typical value Impact
Reference capacity Reference Capacity Autosize Very high
Reference COP Reference COP 5.5–6.5 water; 3.0 air Very high
Capacity curve Cap-f-T (biquadratic) From manufacturer High
Efficiency vs temperature EIR-f-T (biquadratic) From manufacturer High
Efficiency vs part load EIR-f-PLR (quadratic) From manufacturer Very high
Minimum unloading Minimum Unloading Ratio 0.20–0.25 Medium

Boiler

In the real world A vessel where fuel burns and heats water. Non-condensing: hot flue gas, 80–84%, needs return water above 140 °F or it corrodes. Condensing: stainless or aluminium heat exchanger designed to condense the flue gas, 88–98%, but only if the return is cold.

Job Produce heating hot water.

In OpenStudio Boiler:HotWater. The Normalized Boiler Efficiency Curve field lets efficiency depend on part-load ratio and inlet water temperature — that is how you correctly model condensing behaviour.

What you set E+ object / field Typical value Impact
Nominal efficiency Nominal Thermal Efficiency 0.80 standard; 0.95 condensing Very high
Efficiency curve Normalized Boiler Efficiency Curve Bivariate PLR + inlet T High
Design outlet temperature Design Water Outlet Temperature Follows the chosen regime Very high
Design flow Design Water Flow Rate Autosize Medium
Minimum part load Minimum Part Load Ratio 0.1–0.25 Medium

Heat pump (building scale)

In the real world A chiller that can run backwards, or a machine purpose-built to make hot water. ASHP from ambient air (capacity drops when it gets cold, plus defrost cycles). WSHP/GSHP from a water loop or a borefield (stable source, stable performance). Air-to-water: the core of most commercial electrification projects today.

Job Produce heat at a COP of 2 to 4 instead of an efficiency of 0.95.

In OpenStudio HeatPump:PlantLoop:EIR:Heating and :Cooling, which can be declared as a companion pair. GroundHeatExchanger:System for a borefield.

What you set E+ object / field Typical value Impact
Reference COP Reference COP 3.0–3.5 air-to-water at 47 °F Very high
Balance point Minimum Source Inlet Temperature 5–17 °F by machine Very high
Backup heat Coil:Heating:Electric downstream Sized for the worst case Very high
Defrost Defrost Strategy / curve ReverseCycle High
Capacity vs temperature Capacity Modifier Function of Temp From manufacturer Very high

Cooling tower

In the real world A large box on the roof where condenser water is sprayed over fill while a fan pulls air through. Some water evaporates and carries the heat away. Sound: falling water plus a rush of air. Visible plume in cold weather.

Job Reject heat to the atmosphere, getting below ambient dry bulb through evaporation. That is why a water-cooled chiller beats an air-cooled one.

In OpenStudio CoolingTower:SingleSpeed / :TwoSpeed / :VariableSpeed, on the supply side of a PlantLoop declared as Condenser type.

What you set E+ object / field Typical value Impact
Approach Design Approach Temperature 5–10 °F High
Range Design Range Temperature 10 °F High
Water setpoint SetpointManager:FollowOutdoorAirTemperature 85 °F or reset Very high
Fan power Design Fan Power Autosize High
Speed control Object type VariableSpeed for new work High

Pumps

In the real world Centrifugal pumps circulating water. Vocabulary: head (in feet of water), flow (gpm), pump curve versus system curve, decoupler bridge, NPSH.

Job Circulate. And consume far more than people expect once the real delta-T collapses.

In OpenStudio Pump:VariableSpeed, Pump:ConstantSpeed, HeaderedPumps:* for a bank of pumps in parallel.

What you set E+ object / field Typical value Impact
Design head Rated Pump Head 60–90 ft chilled water Very high
Motor efficiency Motor Efficiency 0.90 Medium
Control type Pump Control Type Intermittent High
Part-load curve Coefficients 1 to 4 Cubic with a VFD High
Design delta-T Sizing:Plant / Loop Design Temp Difference 12–16 °F chilled water Very high

Waterside economizer

In the real world A plate-and-frame heat exchanger between the condenser water loop and the chilled water loop.

Job When it is cold and dry outside, the tower alone makes water cold enough and the chiller shuts off entirely. Enormous in marine climates and data centres.

In OpenStudio HeatExchanger:FluidToFluid bridging the two loops, with a control type such as CoolingSetpointOnOffWithComponentOverride.

Domestic hot water

In the real world Separate from space heating. Gas or electric storage tanks, tankless heaters, or heat pump water heaters.

Job Showers and sinks. Minor in a high-performance office, dominant in a hotel, multifamily or hospital, and the hardest thing to electrify.

In OpenStudio WaterHeater:Mixed or :Stratified, with WaterUse:Equipment and WaterUse:Connections for the draws. WaterHeater:HeatPump:PumpedCondenser for a HPWH — and note it cools and dehumidifies the room it sits in, which E+ captures if you place it in a zone.

2.4 The things you meet on every project that nobody explains

This section exists because these terms come up constantly in drawings, meetings and submittals, and none of them are in a textbook chapter of their own. They are configurations and auxiliary equipment rather than headline systems, which is exactly why they get skipped.

Buffer tank

HEAT PUMPBUFFER TANKpure volumeTO THE COILStwo-pipe: everything flows through the tank; it adds thermal mass so the heat pump stops short-cycling
The two-pipe buffer tank. Nothing clever — just water volume in the circuit. It gives a small plant the thermal inertia the building pipework lacks, so the machine runs in long, healthy cycles instead of hammering on and off.

In the real world An insulated steel tank, anywhere from 50 to several thousand gallons, sitting next to the boilers or heat pumps. It looks like a plain vertical cylinder with four or six connections and a thermometer. There is nothing inside it but water.

Job Add water volume to a hydronic loop. Modern piping is small and modern machines hold almost no water, so a system can contain very little water in total. When the load falls below the machine’s minimum output, the machine satisfies it in a minute, shuts off, and restarts a minute later. That is short cycling, and it wrecks compressors, ruins efficiency and destroys comfort. The tank gives the loop enough thermal inertia that the machine can complete a decent run.

Why it became a big topic. Air-to-water heat pumps have a minimum run time, a minimum flow rate and very little internal volume, and manufacturers make the warranty conditional on a minimum system volume. Modular boilers and small chillers have the same issue. A buffer tank is now a standard part of almost every electrified hydronic design, which is why it suddenly appears everywhere.

Two-pipe or four-pipe. A two-pipe tank sits in series and every gallon passes through it: it adds volume, nothing more. A four-pipe tank has separate source and load connections, so it also acts as a hydraulic separator — the machine can run at its required flow while the building runs at whatever flow it needs. Note that this is a completely different use of "two-pipe" and "four-pipe" than the one in the next entry. The words are reused, and that is a genuine source of confusion.

Sizing rule. V (gallons) = Q (Btu/h) x t (minutes) / (500 x deltaT). With a 100 MBH minimum output, a 10-minute minimum run time and a 10 °F swing, you need 200 gallons. Manufacturers also quote a blunter rule of a few gallons per ton of machine capacity.

What you set E+ object / field Typical value Impact
Loop water volume PlantLoop / Plant Loop Volume Autocalculate or explicit Low on energy
Chilled water buffer ThermalStorage:ChilledWater:Mixed Tank volume Low to medium
Hot water buffer WaterHeater:Mixed on the loop Tank volume + UA Low to medium
Standby losses Tank UA / ambient zone Insulated Low
Machine minimum load Minimum Part Load Ratio 0.20–0.25 Medium

Two-pipe, three-pipe and four-pipe systems

CHILLERsummerBOILERwinterCHANGEOVERvalvesONE COIL PER ROOMsame pipes all yearthe whole building is either in heating or in cooling — never both. Shoulder seasons are the misery.
Two-pipe changeover. Half the pipework of a four-pipe system, and its defining limitation: the entire building switches season at once. The week the sun hits the south façade while the north still wants heat is the week everyone calls.

What it means. The count is literally the number of pipes running to each terminal unit. A two-pipe fan coil has one coil fed by one supply and one return, and that water is either hot or chilled depending on what the central plant is making that season. A four-pipe unit has separate heating and cooling coils with their own supply and return, so any zone can heat while any other cools.

Why two-pipe still exists. It is roughly half the pipework, half the insulation, half the valves and much less shaft space. In a hotel or an apartment building with hundreds of identical rooms, that is a very large amount of money. It works acceptably where the outdoor climate genuinely decides the mode for everyone at once.

Where it fails. Shoulder season. On a sunny day in April, the south side needs cooling and the north side needs heating, and a two-pipe system can only offer one of them. Changeover between modes typically takes hours or days, so occupants are simply uncomfortable in between. This is the single reason four-pipe dominates in offices.

Three-pipe. Separate hot and chilled supply, but a shared common return. It saves one pipe and mixes hot and chilled return water together, which is thermodynamic vandalism. Energy codes effectively rule it out. You will only meet it in old buildings, and when you do, it explains a lot about their bills.

The VRF version of the same idea. Refrigerant systems use the same counting. A two-pipe VRF is a heat pump: all indoor units must be in the same mode. A three-pipe VRF, or a two-pipe VRF with a branch controller box depending on the manufacturer, is a heat recovery system that moves heat between zones. When someone says "is it two-pipe or three-pipe VRF", they are asking whether it can do simultaneous heating and cooling.

What you set E+ object / field Typical value Impact
Four-pipe terminal ZoneHVAC:FourPipeFanCoil Both loops connected Structural
Two-pipe behaviour Plant availability schedules Seasonal changeover Very high
Changeover dates Schedule:Compact on each loop By climate Very high
VRF heat recovery Heat Pump Waste Heat Recovery Yes = three-pipe Very high

The AHU family — which box does what

THE BUILDINGoutdoor air inexhaust outexfiltration — leaksdesign slightly positive: a little more supply than exhaust, so leaks flow outward
The building air balance. Every cfm that comes in leaves somewhere. Model supply, exhaust and infiltration as a set and keep the building slightly positive — a building modelled at strong negative pressure is a building that sucks unconditioned air through every crack.

Every one of these is a fan in a cabinet, and on drawings they all look similar. The difference is what fraction of outdoor air they handle and what job they do in the balance above.

Name What it handles Outdoor air What it is really for
AHU Return air mixed with outdoor air 15–30% The standard conditioning unit. Recirculates most of the air because that is cheaper than treating it all.
DOAS / OAU Outdoor air only 100% Ventilation, conditioned to a usable supply temperature and delivered straight to zones. Something else handles the thermal load.
MAU Outdoor air only 100% Makeup air. Replaces air that a large exhaust system removes. Often only tempered, not fully conditioned.
ERU / ERV Outdoor air plus exhaust 100% A DOAS and the exhaust unit in one cabinet, wrapped around a recovery device.
EF Exhaust air only Removes contaminated air from toilets, kitchens, labs, garages. Runs whether or not the AHU does.
Relief fan Excess return air Dumps the surplus when the economizer opens wide. It does nothing at minimum outdoor air.
Return fan Return air Pulls air back through the return path on large or high-resistance systems, and sets building pressure.

Relief versus exhaust. They are not the same thing and the words are not interchangeable. Relief air is clean return air being dumped because the economizer brought in more outdoor air than the building needs; it only happens during economizer operation. Exhaust air is dirty air being deliberately removed from a specific space, and it runs on its own schedule regardless of what the AHU is doing.

Transfer air. Air moving from one space into another through a door undercut or a wall grille, with no duct and no fan. The classic case is a toilet room: the exhaust fan pulls air out, and the makeup comes from the corridor rather than from a supply duct. It is free ventilation reuse, and it is a real design strategy, not an accident.

Return fan or relief fan. A design decision with real consequences. A relief fan only runs during economizer operation and costs nothing the rest of the year, but it gives you less control of building pressure. A return fan runs whenever the system runs, costs energy all year, and gives firm pressure control. On anything except very large or very leaky buildings, a relief fan is usually the better answer.

What you set E+ object / field Typical value Impact
DOAS behaviour Controller:OutdoorAir, min = max 100% outdoor air Structural
Exhaust Fan:ZoneExhaust With its own schedule High
Return fan Fan on the return path Optional High
Relief Inside AirLoopHVAC:OutdoorAirSystem Implicit Medium
Transfer air ZoneMixing between zones Corridor to toilet Medium
Mass balance ZoneAirMassFlowConservation Off by default High

Heat recovery — the whole family, not just the wheel

"Heat recovery" is used loosely for at least six different things. When someone says a project has heat recovery, the useful follow-up question is which of these they mean.

Type What it moves E+ object
Air-to-air Heat and sometimes moisture between exhaust and intake HeatExchanger:AirToAir:SensibleAndLatent
Heat recovery chiller Chiller condenser heat into the heating loop instead of the tower Chiller:Electric:EIR with a heat recovery loop
VRF refrigerant side Heat between zones through the refrigerant circuit Heat Pump Waste Heat Recovery on the VRF object
Waterside economizer Building heat straight to the tower, bypassing the chiller HeatExchanger:FluidToFluid
Desuperheater Compressor discharge heat into domestic hot water Coil:WaterHeating:Desuperheater
Drain water Heat from shower waste into incoming cold water Modelled as a water heater inlet adjustment
WSHP loop Heat between zones through a common water loop The loop itself is the recovery device

Cooling tower variants and the water vocabulary

Type How it works The trade-off
Open circuit Process water is sprayed directly over fill, in contact with the air Most efficient and cheapest. The water gets dirty, so it needs treatment, and the chiller condenser sees that water.
Closed circuit / fluid cooler A coil separates the clean process loop from the sprayed water Clean loop, no fouling in the equipment. Larger, more expensive, a few degrees worse approach.
Dry cooler No evaporation at all, just a large radiator with fans No water, no treatment, no Legionella. But it can only approach the dry bulb, not the wet bulb, so it is far less effective.
Adiabatic / hybrid Pre-cools the incoming air with an evaporative pad, then a dry coil Most of the evaporative benefit with a fraction of the water use. Increasingly popular where water is scarce.

The vocabulary that goes with any evaporative device, because it will come up in a meeting:

  • Makeup water. What you add to replace what evaporates, drifts away and is drained.

  • Blowdown. Water drained deliberately to stop dissolved solids concentrating as pure water evaporates away.

  • Cycles of concentration. How many times the dissolved solids are allowed to concentrate before blowdown. Higher cycles save water and stress the treatment chemistry.

  • Drift. Droplets carried out of the tower by the air stream. Drift eliminators are the baffles that catch them, and they matter for both water use and Legionella.

  • Basin heater. An electric heater that stops the sump freezing in winter. A real and frequently forgotten energy end use in cold climates.

  • Plume abatement. Mixing warm dry air with the saturated exhaust so the visible white plume does not alarm the neighbours.

  • ASHRAE 188. The Legionella risk management standard. It is why open towers get scrutinised in healthcare and why some owners refuse them entirely.

What you set E+ object / field Typical value Impact
Open tower CoolingTower:VariableSpeed Variable speed fan Very high
Closed circuit EvaporativeFluidCooler:TwoSpeed By selection High
Dry cooler FluidCooler:SingleSpeed / :TwoSpeed By selection High
Basin heater Basin Heater Capacity + setpoint 40 °F Medium in cold zones
Water use reporting Evaporation Loss Mode, Blowdown Mode SaturatedExit Reporting only
Cycles of concentration Blowdown Concentration Ratio 3–6 Water use only

3. The system fiches

Ordered by increasing complexity. Each level adds something to the one before, and the order is not decorative: it is roughly the historical order in which these systems appeared, each answering a limitation of the previous one.

The whole ladder on one page

# System What it adds to the previous level Its own limit
0 Ideal Loads Nothing — this is pure load No equipment, no system energy
1 Heating and ventilation A heat emitter, outdoor air No cooling at all
2 PTAC / PTHP Cooling, room by room No sharing, mediocre efficiency
3 PSZ-AC / rooftop A duct network and an economizer One zone per machine
4 CAV with reheat Several zones on one machine Constant flow: cool then reheat
5–6 VAV with reheat Flow varies with load Residual reheat, coupled ventilation
7 VAV + fan-powered boxes Constant air motion in the room Terminal fans everywhere
8 DOAS + fan coils Ventilation decoupled from thermal Two systems to maintain
9 WSHP loop Heat transfer between zones Many small machines
10 VRF + DOAS Continuous modulation, no water Refrigerant charge, specialist maintenance
11 Radiant + DOAS Comfort through surfaces, very little air Thermal mass, condensation risk
12 Chilled beams + DOAS Cooling without terminal fans Constrained water regime, dew point

Level 0 — Ideal Loads Air System

The load reference — not a real system

THERMAL ZONEheld exactly at setpointair at whatever temperature and humidity is neededno fan · no coil · no plant · infinite capacity
Level 0. Nothing is modelled but the room itself: a fictitious system delivers exactly the air the zone needs. The result is the pure building load — the question every real system in this ladder is an answer to.

What you would actually see

Nothing. This does not exist in a building. It is a zone magically supplied with exactly the air it needs, at exactly the temperature it needs, with no capacity limit whatsoever.

The problem it solves

Separate the building load from system inefficiency. When you compare two envelopes, two insulation levels or two window-to-wall ratios, you do not want the answer polluted by VAV behaviour. Ideal Loads gives you pure demand, in kBtu, zone by zone.

Where it is used, and why

Criterion Answer
Building type Any — this is not a design choice
Project phase Concept and schematic design. Envelope, orientation, glazing and mass studies.
Climate All. That is the point: load is comparable across climates.
When not to use it As soon as you are comparing HVAC systems, doing code compliance, or estimating a bill. Ideal Loads consumes nothing recognisable.

Relative energy use: not applicable (reference = VAV with reheat, non-optimised, Level 6). No system energy. It is a denominator, not a numerator.

Strengths and trade-offs

Strengths

  • Isolates the envelope and internal loads from every equipment decision.
  • Runs in seconds; perfect for early massing and load studies.
  • The clean baseline every real system should be compared against.

Trade-offs

  • Not a system: no fan energy, no part-load behaviour, no reality.
  • Reports energy a real building could never achieve.
  • Useless for compliance or sizing deliverables.

Use it first on every project — then climb the ladder.

Building it in OpenStudio

  • Create the ThermalZones and assign Spaces with loads and schedules.

  • Attach a ZoneHVAC:IdealLoadsAirSystem to each zone — no AirLoopHVAC, no PlantLoop.

  • Set heating and cooling limits to NoLimit for genuinely pure load.

  • Enable ventilation and recovery on the object if you want to measure the impact of outdoor air.

What you can set

Parameter E+ object / field Typical value Impact
Capacity limits Heating/Cooling Limit NoLimit Very high
Supply temperatures Max Heating Supply Air Temp 122 °F / 55 °F Medium
Humidity control Dehumidification Control Type ConstantSensibleHeatRatio High
Outdoor air DesignSpecification:OutdoorAir Per 62.1 High
Recovery Heat Recovery Type None or Sensible High
Economizer Outdoor Air Economizer Type NoEconomizer High

Classic mistakes on this system

  • Comparing Ideal Loads to a real system and drawing a savings conclusion. The two do not measure the same thing.

  • Leaving recovery on by default and understating the ventilation load.

  • Forgetting that sizing from Ideal Loads is not equipment sizing.

What to check after the run

  • Check that unmet hours are zero — if they are not, your schedules or setpoints are inconsistent.

  • Look at the heating/cooling split by zone: it is the fastest envelope diagnostic that exists.

  • Compare ventilation load to envelope load. On a modern well-insulated building, ventilation often dominates.

Level 1 — Heating and ventilation only

90.1 baseline systems 9 and 10 — unit heaters, radiators, exhaust

OUTDOOR AIRFILTERHW COILheating onlyFANZONESexhaust — no return, no cooling
Level 1. The simplest real system: bring outdoor air in, warm it, push it to the rooms, throw it away. Cooling does not exist — which is exactly why the next levels do.

What you would actually see

A warehouse, a covered car park, an unconditioned gym. Unit heaters hanging from the structure blowing warm air downwards, or radiators along the walls. A roof exhaust fan. No cooling anywhere.

The problem it solves

The bare minimum: prevent freezing, change the air, hold a tolerable temperature in winter. It is accepted that it will be hot in summer.

Where it is used, and why

Criterion Answer
Building type Warehouses, workshops, car parks, hangars, plant rooms, some gyms
Size Any, but especially large volumes with low occupant density
Climate zones Anywhere summer is tolerable without cooling, or where the use does not justify it
Why Because the cooling load is small (few occupants, little equipment, great height) and the cost of air conditioning cannot be justified.

Relative energy use: 30 to 50 (reference = VAV with reheat, non-optimised, Level 6). Very low, but this is not performance: there is simply no cooling.

Strengths and trade-offs

Strengths

  • Dead simple: few objects, few ways to be wrong.
  • Honest for buildings that genuinely have no cooling.
  • Cheap to build and to run.

Trade-offs

  • No cooling: one hot week and comfort collapses.
  • No return air — all the heat in the exhaust is thrown away without recovery.
  • Rare in new commercial work; mostly a renovation baseline.

Building it in OpenStudio

  • ZoneHVAC:UnitHeater or ZoneHVAC:Baseboard:Convective:Water on each zone.

  • If hot water: a PlantLoop with Boiler:HotWater and Pump:VariableSpeed.

  • Ventilation: either ZoneHVAC:OutdoorAirUnit, a minimal 100% outdoor air AirLoopHVAC, or assumed infiltration.

  • Fan:ZoneExhaust for exhaust, with its schedule.

What you can set

Parameter E+ object / field Typical value Impact
Emitter capacity Nominal Capacity Autosize High
Efficiency Efficiency (gas unit heater) 0.80 High
Heating setpoint ThermostatSetpoint:SingleHeating 55–65 °F by use Very high
Exhaust flow Fan:ZoneExhaust / Maximum Flow Rate Per code for the use High
Infiltration ZoneInfiltration:DesignFlowRate High on large volumes Very high
Stratification Handled through zone height To be documented Medium

Classic mistakes on this system

  • Modelling a 40 ft high warehouse as a perfectly mixed zone. Stratification is real and changes the heating load.

  • Understating infiltration at loading docks and sectional doors.

  • Forgetting code-mandated exhaust (car parks, workshops), which often drives consumption.

What to check after the run

  • Unmet heating hours — if they spike, your setpoint or infiltration is inconsistent.

  • Gas use per square foot, against a warehouse benchmark.

  • Ventilation share of the heating load: it should dominate.

Level 2 — PTAC and PTHP

90.1 baseline systems 1 and 2 — the box under the window

ROOM 1PTACDX cool + heatoutdoor air through the wallROOM 2PTACDX cool + heatoutdoor air through the wallROOM 3PTACDX cool + heatoutdoor air through the wallone self-contained unit per room · no ducts · no plant room · one thermostat each
Level 2. The hotel-room answer: every room gets its own small machine through the wall — a refrigeration circuit for cooling, electric or reverse-cycle heat. Nothing is shared, so nothing is coordinated; it is cheap, loud, and everywhere.

What you would actually see

The unit under a hotel room window, with its façade grille and its dial. It goes right through the wall. Sound: a fan starting and stopping, and a compressor clunking on. Every room has its own, completely independent.

The problem it solves

Condition room by room with no network, no plant room, no coordination. Each unit takes its outdoor air directly from outside and rejects its heat directly outside.

Where it is used, and why

Criterion Answer
Building type Hotels, motels, care homes, small multifamily, school additions
Size Small repetitive zones, typically 200 to 400 ft² each
Climate zones PTAC anywhere; PTHP mainly zones 1 to 4 where the heat pump keeps its capacity. Beyond zone 5 the electric backup takes over too often.
Why Minimal capital cost, trivial unit replacement, individual metering, and zero coordination between rooms. The trade-off is mediocre efficiency and noise in the room.

Relative energy use: 115 to 140 (reference = VAV with reheat, non-optimised, Level 6). Higher than the reference: small inefficient machines, no sharing, no economizer.

Strengths and trade-offs

Strengths

  • Lowest first cost per room; no plant room, no ductwork.
  • Full individual control — every room its own thermostat.
  • One failed unit strands one room, not the building.

Trade-offs

  • Worst efficiency of the ladder: small compressors, no recovery, no economizer.
  • Noise lives in the room with the occupant.
  • Maintenance multiplied by the number of rooms.

Same zonal idea, done better: Level 9 (WSHP) and Level 10 (VRF).

Building it in OpenStudio

  • ZoneHVAC:PackagedTerminalAirConditioner or :PackagedTerminalHeatPump on each zone.

  • No AirLoopHVAC. Outdoor air is a field on the object itself.

  • If hot water heating (PTAC, baseline system 1): a PlantLoop with Boiler:HotWater.

  • Fan:OnOff and Coil:Cooling:DX:SingleSpeed are the expected sub-objects.

What you can set

Parameter E+ object / field Typical value Impact
Cooling efficiency Coil:Cooling:DX:SingleSpeed / Rated COP 3.0–3.3 Very high
Heating efficiency (PTHP) Coil:Heating:DX:SingleSpeed / Rated COP 3.0–3.5 Very high
Electric backup Supplemental Heating Coil Always present Very high
Balance point Max OA Dry-Bulb for Supplemental Heater 40 °F High
Outdoor air per unit Outdoor Air Flow Rate During Cooling 15–30 cfm High
Fan Fan:OnOff / Pressure Rise 0.4–0.6 in. w.c. Medium
Cycling Supply Air Fan Operating Mode Schedule Cycling High

Classic mistakes on this system

  • Forgetting the electric backup coil on a PTHP: the model becomes unrealistic as soon as it freezes.

  • Leaving the fan running continuously when in reality it cycles with the compressor.

  • Not modelling outdoor air, when on this system it enters each room raw with no pretreatment at all — it is a brute-force load.

What to check after the run

  • Electric backup consumption: if it is significant, the balance point is wrong or the climate does not suit.

  • Compressor cycle count: excessive cycling signals oversizing.

  • Unmet hours per zone, separating corner rooms from typical rooms.

Level 3 — PSZ-AC and PSZ-HP — the single-zone rooftop

90.1 baseline systems 3 and 4 — Packaged Single Zone

OUTDOOR AIRMIXFILTERDX COOLGAS HEATFANONE ZONEone thermostatRETURNeconomizer: when outdoor air is cool, the mixing box opens wide and cooling is free
Level 3. The whole machine on the roof: mix return with outdoor air, cool with its own refrigeration, heat with gas, blow it to one zone and bring it back. One box, one zone, one thermostat — the workhorse of small commercial buildings.

What you would actually see

The beige box on the roof of a supermarket, a school or a small office. Everything is inside: compressor, condenser, gas burner, fan, dampers. A short duct network drops down to a single thermal zone. Sound: the condenser on the roof. It is the best-selling HVAC system in North America.

The problem it solves

Add a duct network and an economizer to the previous level, while keeping one fully autonomous machine per zone. The economizer is the real jump: free cooling from outdoor air becomes possible.

Where it is used, and why

Criterion Answer
Building type Retail, schools, small offices, conditioned warehouses, restaurants
Size Buildings under three storeys, zones of 1,000 to 10,000 ft² per unit
Climate zones PSZ-AC anywhere. PSZ-HP mainly zones 1 to 4; in zone 4C the heat pump is excellent because it rarely freezes.
Why Low installed cost, no plant room, localised failure. The limit is structural: one machine can only satisfy one thermostat, so any multi-zone building needs a lot of them.

Relative energy use: 85 to 110 (reference = VAV with reheat, non-optimised, Level 6). Often better than the reference thanks to the economizer and the absence of reheat — provided the zoning is honest.

Strengths and trade-offs

Strengths

  • The economizer arrives: free cooling whenever outside air is cool.
  • Packaged, cheap, understood by every contractor in the country.
  • Good fit when one thermostat truly represents the space.

Trade-offs

  • One zone per unit — big or diverse floors get many rooftops.
  • Single-speed DX cycles hard at part load.
  • Gas heat plus DX cooling: two fuels, mediocre both ways.

Multi-zone from one unit is exactly what Levels 4–6 add.

Building it in OpenStudio

  • One AirLoopHVAC per zone. That is the defining constraint of this system.

  • Supply side: AirLoopHVAC:OutdoorAirSystem, then Coil:Cooling:DX:SingleSpeed, then Coil:Heating:Fuel (or DX for a heat pump), then Fan:OnOff or Fan:SystemModel.

  • In practice use AirLoopHVAC:UnitarySystem, which wraps the coils and fan cleanly and handles cycling.

  • Demand side: AirTerminal:SingleDuct:ConstantVolume:NoReheat to the single zone.

  • SetpointManager:SingleZone:Reheat on the outlet node — this is what varies supply air temperature with the zone demand.

What you can set

Parameter E+ object / field Typical value Impact
Cooling efficiency Coil:Cooling:DX:SingleSpeed / Rated COP 3.2–4.0 depending on SEER/IEER Very high
Gas heating efficiency Coil:Heating:Fuel / Efficiency 0.80 Very high
Economizer Controller:OutdoorAir / Economizer Control Type DifferentialDryBulb Very high
Fan power Fan / Pressure Rise + Efficiency 0.6–0.9 W/cfm Very high
Fan mode Supply Air Fan Operating Mode Cycling when unoccupied High
DX curves Cap-f-T, EIR-f-T, PLF-f-PLR From manufacturer High
Outdoor air DesignSpecification:OutdoorAir By use High
Night cycle AvailabilityManager:NightCycle CycleOnAny Medium

Required setpoint managers

  • SetpointManager:SingleZone:Reheat on the fan outlet node — mandatory, it is the basic single-zone control.

  • SetpointManager:MixedAir upstream and downstream of the fan if you build the chain by hand, to account for fan heat.

Classic mistakes on this system

  • Lumping several orientations into "the" zone of a PSZ. A rooftop sees one thermostat: merge south and north and your model is comfortable while the building is not.

  • Forgetting the economizer, or leaving it at NoEconomizer. In a marine climate that is worth several EUI points.

  • Modelling a constant-volume fan running continuously when the machine cycles.

  • Using default DX curves while claiming a premium-efficiency unit: efficiency is a family of curves, not a number.

What to check after the run

  • Economizer hours: they must be consistent with the climate. In 4C they should be numerous.

  • Compressor cycles and part-load factor: oversizing shows up immediately.

  • Heating and cooling on the same day in the same zone: legitimate here in shoulder season, but understand why.

Level 4 — CAV with terminal reheat

Constant Air Volume with reheat — the 1960s system

OUTDOOR AIRMIXCOOLINGeverything to 55 °FFANREHEATHW coilZONE 1REHEATHW coilZONE 2REHEATHW coilZONE 3RETURN
Level 4. Constant airflow, always. All the air is cooled for the worst zone, then every other zone burns hot water to warm its share back up. It solved the multi-zone problem — at the price of the classic simultaneous heating-and-cooling waste.

What you would actually see

A large AHU in a plant room, a fixed-flow duct network, and a reheat coil in each zone branch. You find it in pre-1975 buildings, in operating rooms, and in some laboratories where the flow must never vary.

The problem it solves

Serve several zones from one machine. The chosen solution: cool all the air down to what the most demanding zone needs, then reheat locally for all the others. It works, it is robust, and it is energetically absurd.

Where it is used, and why

Criterion Answer
Building type Pre-1975 existing buildings; operating rooms, cleanrooms, labs with mandated airflow
Size Multi-zone, any number of floors
Climate zones All, but the waste peaks in shoulder season and in mild climates
Why it still exists Only where airflow must stay constant for a hygiene or containment reason: mandated air change rates, pressure cascades between rooms, contaminant dilution.

Relative energy use: 130 to 170 (reference = VAV with reheat, non-optimised, Level 6). The worst on the list. Every Btu of reheat cancels a Btu of cooling you already paid for.

Strengths and trade-offs

Strengths

  • Solves multi-zone: every zone holds its own setpoint.
  • Constant airflow keeps ventilation simple and stable.
  • Simple controls; hard to break.

Trade-offs

  • The canonical energy disaster: cool everything, then reheat most of it.
  • Fan runs at full flow every occupied hour.
  • Kept today mostly where codes or hygiene demand constant volume.

Level 5 exists precisely to fix this system's fan and reheat waste.

Building it in OpenStudio

  • A multi-zone AirLoopHVAC with Fan:ConstantVolume or Fan:SystemModel in constant mode.

  • Supply side: OutdoorAirSystem, Coil:Cooling:Water, possibly a preheat coil, then the fan.

  • Demand side: AirTerminal:SingleDuct:ConstantVolume:Reheat on each zone, with Coil:Heating:Water.

  • Two PlantLoops: chilled water and hot water.

  • SetpointManager:Scheduled at 55 °F on the supply node, or SetpointManager:Warmest to model a reset.

What you can set

Parameter E+ object / field Typical value Impact
Supply air temperature SetpointManager:Scheduled 55 °F fixed Very high
Supply air reset SetpointManager:Warmest 55 to 65 °F Very high
Zone airflow AirTerminal / Maximum Air Flow Rate Autosize Very high
Reheat capacity Coil:Heating:Water / Rated Capacity Autosize High
Fan power Fan / Pressure Rise 2.5–4 in. w.c. Very high
Economizer Controller:OutdoorAir DifferentialDryBulb High

Required setpoint managers

  • SetpointManager:Scheduled or :Warmest on the supply node.

  • SetpointManager:MixedAir on both sides of the fan.

Classic mistakes on this system

  • Not modelling supply air temperature reset when it exists. On CAV it is the only savings measure available, and it is large.

  • Defaulting to CAV for an existing building without checking whether it was converted to VAV, which happened en masse in the 1980s and 1990s.

  • Forgetting that ventilation here is over-supplied by construction: outdoor airflow far exceeds the code minimum.

What to check after the run

  • Terminal reheat energy against cooling energy: if both are high at once, that is normal on this system and exactly what you should be showing.

  • Simultaneous heating and cooling, hour by hour, by zone.

  • Compare against a VAV variant: it is the most legible demonstration there is for a client.

Level 5 — Packaged VAV with reheat

90.1 baseline systems 5 and 6 — VAV on direct expansion

OUTDOOR AIRMIXDX COOLon the roofFAN + VFDslows downVAV BOXdamper + reheatZONE 1VAV BOXdamper + reheatZONE 2VAV BOXdamper + reheatZONE 3RETURN
Level 5. The fix for Level 4: each zone throttles its own airflow, and the fan slows to match. Fan power falls roughly with the cube of flow — half the air is about a fifth of the power. Cooling still comes from refrigeration on the roof.

What you would actually see

A large rooftop, but this time feeding a network serving ten to forty VAV boxes. Cooling is made by direct expansion inside the rooftop, not by a central chilled water plant. Very common in mid-size US offices.

The problem it solves

Vary the airflow instead of holding it constant. Fan power scales with the cube of flow, so halving the flow divides fan power by five or six. It is the single largest efficiency jump on this whole ladder.

Where it is used, and why

Criterion Answer
Building type Mid-size offices, secondary schools, administrative buildings
Size Typically 20,000 to 100,000 ft², up to five or six storeys
Climate zones All. In zones 5 to 8 reheat becomes expensive; in zones 1 to 3 staged DX loses efficiency at part load.
Why DX rather than a chiller No plant room, no tower, no water treatment, no specialist operator. Below a certain floor area a chilled water plant does not pay for itself.

Relative energy use: 95 to 115 (reference = VAV with reheat, non-optimised, Level 6). Close to the reference. DX is less efficient than a chiller, but you save the pumps.

Strengths and trade-offs

Strengths

  • Fan law windfall: half the air costs about a fifth of the power.
  • Reheat shrinks — boxes close toward a minimum instead of fighting 55 °F air.
  • Still packaged: no plant room needed.

Trade-offs

  • Box minimums set too high quietly rebuild Level 4 inside a VAV skin.
  • DX at low load cycles; humidity control gets rough.
  • Duct static setpoint left flat wastes the VFD you paid for.

Building it in OpenStudio

  • One AirLoopHVAC with Fan:VariableVolume or Fan:SystemModel in variable mode.

  • Supply side: OutdoorAirSystem, then AirLoopHVAC:UnitarySystem containing Coil:Cooling:DX:TwoSpeed or :VariableSpeed and a heating coil.

  • Demand side: AirTerminal:SingleDuct:VAV:Reheat on perimeter zones, :VAV:NoReheat on interior zones.

  • A hot water PlantLoop if reheat is hydronic (system 5); Coil:Heating:Electric if electric (system 6).

  • SetpointManager:Warmest or :Scheduled on the supply node.

What you can set

Parameter E+ object / field Typical value Impact
Box minimum AirTerminal / Zone Minimum Air Flow Fraction 0.15 good; 0.30 typical Very high
Max flow during reheat Maximum Flow Fraction During Reheat 0.3–0.5 High
Supply air reset SetpointManager:Warmest 55 to 65 °F Very high
Fan power Fan:SystemModel / Pressure Rise 3–4 in. w.c. Very high
Fan curve Electric Power Function of Flow Cubic with a VFD Very high
DX efficiency Coil:Cooling:DX / Rated COP 3.3–4.2 Very high
Cooling stages TwoSpeed or VariableSpeed VariableSpeed if modern High
Multi-zone ventilation System Outdoor Air Method Standard62.1VRP High

Required setpoint managers

  • SetpointManager:Warmest on the supply node to model the reset properly.

  • SetpointManager:MixedAir on both sides of the fan — a classic omission that corrupts coil control.

Classic mistakes on this system

  • Leaving box minimums at their default value. By far the most expensive mistake in VAV modelling.

  • Modelling a VFD without changing the fan power curve: you declare the drive without getting its savings.

  • Using ZoneSum instead of Standard62.1VentilationRateProcedure: on a multi-zone system this gives a wrong outdoor airflow.

  • Putting reheat on interior zones, which never need it.

What to check after the run

  • Terminal reheat energy: if it exceeds 15% of heating, your minimums are too high.

  • Fan flow profile over the year: it should spend a lot of time near minimum.

  • Simultaneous heating and cooling hours by zone.

  • Delivered outdoor air against the 62.1 requirement.

Level 6 — VAV with reheat on a chilled water plant

90.1 baseline system 7 — THE REFERENCE for this document

AIR SIDEOUTDOOR AIRMIXCHW COILchilled waterFAN + VFDVAV BOXVAV + HW reheatPERIMETERVAV BOXVAV + HW reheatPERIMETERVAV BOXVAV, no reheatINTERIORRETURNWATER SIDECHILLERCHW 44/56 °Fto the coil aboveBOILERHW 140/120 °Fto the reheat coils
Level 6. Same air side as Level 5, but cooling and heating now come from a central water plant — a chiller and a boiler — instead of refrigerant on the roof. This is the default large-building system, and the reference (index 100) for the whole ladder.

What you would actually see

The large US office system. One or two big AHUs per floor or per vertical zone, a chilled water plant in the basement with two or three chillers, a tower on the roof, a boiler room. Dozens to hundreds of VAV boxes. This is what you will model most often, and it is what everything else gets compared to.

The problem it solves

Make cooling at scale more efficiently than direct expansion. A water-cooled centrifugal chiller runs at 0.5 kW/ton against 1.0 for air-cooled DX. Above a few hundred tons the gap pays for the plant, the tower, the pumps and the operator.

Where it is used, and why

Criterion Answer
Building type Large offices, hospitals, universities, airports, laboratories
Size Typically above 100,000 ft², or above 300 tons of installed cooling
Climate zones All. In zones 5 to 8 the reheat term dominates and pushes towards levels 8 and above. In zone 4C, air-side and waterside economizers make this system quite respectable.
Why Generation efficiency, load sharing, redundancy, long service life, and the ability to serve heterogeneous loads. The trade-off is complexity and the need for competent operation.

Relative energy use: 100 — the reference (reference = VAV with reheat, non-optimised, Level 6). Two identical VAV systems can differ by 40% on box minimums and resets. The index describes a conventional setup, not an optimised one.

Strengths and trade-offs

Strengths

  • The reference system: index 100, the yardstick of the ladder.
  • Central plant efficiency and maintenance in one room.
  • Scales to the largest buildings; every reset strategy applies.

Trade-offs

  • Highest coordination burden: air side, two water loops, a tower.
  • Simultaneous heating and cooling still lurks in bad box minimums.
  • First cost and mechanical-room area.

Two identical Level 6 systems can differ by 40% on controls alone — see §5.

Building it in OpenStudio

  • AirLoopHVAC: OutdoorAirSystem, then Coil:Cooling:Water, optionally a Coil:Heating:Water preheat, then a variable Fan:SystemModel.

  • Demand side: AirTerminal:SingleDuct:VAV:Reheat (perimeter) and :VAV:NoReheat (interior).

  • Chilled water PlantLoop: Pump:VariableSpeed, Chiller:Electric:EIR, SetpointManager:Scheduled at 44 °F. Demand side: the cooling coil.

  • Condenser PlantLoop: pump, CoolingTower:VariableSpeed, SetpointManager:FollowOutdoorAirTemperature. Demand side: the chiller condenser.

  • Hot water PlantLoop: Pump:VariableSpeed, Boiler:HotWater, SetpointManager:OutdoorAirReset. Demand side: the reheat coils.

  • PlantEquipmentOperationSchemes to stage multiple chillers or boilers.

What you can set

Parameter E+ object / field Typical value Impact
Box minimum Zone Minimum Air Flow Fraction 0.10–0.20 high performance Very high
Supply air reset SetpointManager:Warmest 55 to 65 °F Very high
Static pressure reset Variable setpoint or EMS Trim and respond Very high
Fan power Fan:SystemModel 0.7–0.9 W/cfm Very high
Chiller COP Chiller:Electric:EIR / Reference COP 5.5–6.5 Very high
Chilled water delta-T Sizing:Plant / Loop Design Temp Difference 12–16 °F Very high
Chilled water reset SetpointManager:OutdoorAirReset 44 to 50 °F High
Hot water regime Sizing:Plant, heating side 180/160 or 140/120 Very high
Hot water reset SetpointManager:OutdoorAirReset 180 down to 120 °F High
Pump head Pump / Rated Pump Head 60–90 ft High
Tower setpoint SetpointManager on the condenser loop 85 °F or reset High
Multi-zone ventilation System Outdoor Air Method Standard62.1VRP High

Required setpoint managers

  • SetpointManager:Warmest on the air loop supply node.

  • SetpointManager:MixedAir upstream and downstream of the fan.

  • SetpointManager:Scheduled or :OutdoorAirReset on the chilled water loop outlet.

  • SetpointManager:OutdoorAirReset on the hot water loop outlet.

  • SetpointManager:FollowOutdoorAirTemperature on the condenser loop.

Classic mistakes on this system

  • Leaving Sizing:Plant at the default delta-T when the coils were designed differently. Water flow and pump energy end up wrong by a factor of two, silently.

  • Omitting SetpointManager:MixedAir around the fan: the coils control to the wrong temperature and fan heat disappears.

  • Declaring a condensing boiler on a 180/160 regime.

  • Modelling one chiller where three are staged: part-load behaviour is completely different.

  • Ignoring the waterside economizer when the climate justifies one.

What to check after the run

  • Chiller part-load histogram over the year. If it runs at 15% all the time, your sizing is wrong.

  • Actual loop delta-T against the Sizing:Plant delta-T.

  • Terminal reheat share of total heating.

  • Pumping energy against cooling generation energy — a ratio above 15% signals a problem.

  • Air-side economizer hours, and waterside economizer hours if one exists.

  • Unmet hours under 300, and above all where they fall: concentrated on a few zones is a sizing issue; spread everywhere is a controls issue.

Level 7 — VAV with fan-powered boxes

90.1 baseline systems 6 and 8 — series and parallel

Same air side as Level 6 — the change is inside the box at the zone.FAN-POWERED BOXFANREHEATprimary airplenum air, recirculated locallyZONEseries: the local fan runs whenever the zone is occupied · parallel: only on heating
Level 7. A VAV box with a local fan that recirculates warm plenum air before touching the reheat coil. Keeps air moving at low load and recovers heat that would sit above the ceiling — at the cost of many small motors living in the ceiling.

What you would actually see

A VAV box with a small fan added that draws warm air from the ceiling plenum. In series, the fan runs continuously and the room gets constant airflow. In parallel, it only starts in heating.

The problem it solves

Two problems with plain VAV. First, when a perimeter zone drops to its minimum flow, air motion stops and comfort degrades. Second, reheating with a coil costs high-grade energy, while the plenum is full of free warm air from the lighting.

Where it is used, and why

Criterion Answer
Building type Offices with pronounced perimeter zones, buildings with high recessed lighting load
Size Multi-zone, often in office floor refurbishments
Climate zones Mainly zones 4 to 6, where perimeter heating matters without being extreme. Pointless in zones 1 to 2; insufficient alone in zones 7 to 8.
Series or parallel Series for comfort and constant air motion, at the cost of a fan that always runs. Parallel for energy, at the cost of variable room airflow. The 90.1 baselines use parallel.

Relative energy use: 95 to 120 (reference = VAV with reheat, non-optimised, Level 6). Parallel can beat the reference; series often exceeds it because of the permanent terminal fans.

Strengths and trade-offs

Strengths

  • Recovers plenum heat that would otherwise be lost.
  • Keeps air movement at low load — comfort in winter perimeter zones.
  • Series boxes give constant room airflow where required.

Trade-offs

  • Dozens of small fans: added energy, noise, and ceiling maintenance.
  • Series boxes run their fan all occupied hours.
  • Easy to mis-model: the fan energy hides at the zone, not the AHU.

Building it in OpenStudio

  • Identical to level 6 for the air loop and the plant loops.

  • Demand side: AirTerminal:SingleDuct:SeriesPIU:Reheat or :ParallelPIU:Reheat.

  • Each box contains its own fan and reheat coil.

  • The plenum must be modelled as a real ThermalZone and declared as the Secondary Air Inlet Node of the box, otherwise the induced air comes from nowhere.

What you can set

Parameter E+ object / field Typical value Impact
Maximum primary flow Maximum Primary Air Flow Rate Autosize Very high
Secondary fan flow Maximum Secondary Air Flow Rate Autosize High
Minimum primary fraction Minimum Primary Air Flow Fraction 0.15–0.30 Very high
Fan-on threshold (parallel) Fan On Flow Fraction 0.3 High
Terminal fan power Fan / Pressure Rise 0.3–0.5 in. w.c. Very high
Secondary air node Secondary Air Inlet Node Name The plenum node Very high
Lighting heat to plenum Lights / Return Air Fraction 0.2–0.5 recessed High

Classic mistakes on this system

  • Not connecting the secondary node to the plenum: the box then induces air at zone temperature and the entire benefit vanishes.

  • Failing to count the cumulative electrical power of dozens of small fans, which is far from negligible.

  • Modelling series while intending parallel, or the reverse. The two have opposite energy signatures.

  • Leaving Return Air Fraction unset on the Lights object, which empties the plenum of its recoverable heat.

What to check after the run

  • Total terminal fan electricity, isolated from the central fan.

  • Plenum temperature over the year: if it sits close to zone temperature, the recovery is not working.

  • Reheat energy compared against a plain VAV variant.

Level 8 — DOAS with four-pipe fan coils

Dedicated Outdoor Air System — decoupling

VENTILATION — DOAS, 100% outdoor airOUTDOOR AIRERVrecoveryCOILFANsmall duct — ventilation onlyHEATING AND COOLING — water to the roomFAN COIL4-pipeCHWHWFAN COIL4-pipeCHWHWFAN COIL4-pipeCHWHWeach room: a fan coil with chilled and hot water pipes · ventilation arrives separately, already conditioned
Level 8. The decoupling move: a small 100% outdoor-air unit does ventilation and the latent load, while water — not air — carries heating and cooling to a fan coil in each room. Ducts shrink, fan energy falls; you inherit a piped plant and a coil in every room.

What you would actually see

A modest AHU that treats outdoor air only, with a recovery wheel and a small network of slim ducts. In each room, a fan coil in the ceiling void or under the window, fed by two pairs of pipes. Sound: a discreet, permanent hiss.

The problem it solves

VAV moves a lot of air only because air is its only way of carrying heat. Water carries roughly 3,500 times more energy per unit volume. Decoupling lets you size ventilation for ventilation and thermal for thermal. Ducts shrink dramatically, which buys floor-to-floor height.

Where it is used, and why

Criterion Answer
Building type Hotels, multifamily, high-performance offices, hospitals, new schools
Size From 20,000 ft² upwards
Climate zones Excellent in zones 3 to 6. In zones 1 and 2 the DOAS must carry all dehumidification and becomes the governing system. In 4C, recovery on outdoor air pays well and the cooling load is small.
Why Floor height gained, fine zonal control, ventilation that is guaranteed and measurable, and above all the option of moderate water regimes compatible with heat pumps.

Relative energy use: 70 to 90 (reference = VAV with reheat, non-optimised, Level 6). A real and robust gain. Fan energy collapses and recovery works on 100% of the outdoor air.

Strengths and trade-offs

Strengths

  • Ventilation and load decoupled — each optimised on its own terms.
  • Water carries energy: pumping beats blowing for the same heat.
  • ERV on 100% outdoor air is at its most effective.

Trade-offs

  • A coil, a fan and a drain pan in every room.
  • Four pipes through the whole building: first cost.
  • Latent duty must be nailed by the DOAS or coils run wet.

The DOAS pattern returns at Levels 10, 11 and 12.

Building it in OpenStudio

  • An AirLoopHVAC whose Controller:OutdoorAir forces 100% outdoor air (minimum = maximum = design flow).

  • Inside the OutdoorAirSystem: HeatExchanger:AirToAir:SensibleAndLatent, then the coils.

  • DOAS demand side: AirTerminal:SingleDuct:ConstantVolume:NoReheat to each zone.

  • ZoneHVAC:FourPipeFanCoil on each zone, connected to both PlantLoops, with its own outdoor air flow set to zero.

  • ZoneHVAC:EquipmentList: the order matters. The DOAS is the ventilation equipment, the fan coil is the thermal equipment.

  • Fan:ZoneExhaust or a dedicated exhaust system to feed the recovery wheel.

What you can set

Parameter E+ object / field Typical value Impact
DOAS supply setpoint SetpointManager:Scheduled 65–70 °F neutral, or 55 °F if dehumidifying Very high
Sensible effectiveness HeatExchanger / Sensible Effectiveness 0.70–0.80 Very high
Latent effectiveness Latent Effectiveness 0.65–0.75 High
Outdoor airflow DesignSpecification:OutdoorAir Per 62.1 Very high
Fan coil capacity ZoneHVAC:FourPipeFanCoil / capacities Autosize High
Fan coil control Capacity Control Method VariableFanVariableFlow High
Fan coil fan power Fan / Pressure Rise 0.3–0.6 in. w.c. High
Chilled water regime Sizing:Plant 44/56 or 45/60 High

Required setpoint managers

  • SetpointManager:Scheduled on the DOAS supply — choosing between neutral air and cold air is a structural design decision.

  • SetpointManager:MixedAir around the DOAS fan.

  • The usual setpoint managers on both water loops.

Classic mistakes on this system

  • Assigning outdoor air to the fan coil on top of the DOAS: ventilation then gets counted twice.

  • Supplying neutral air in a humid climate, which leaves the whole latent load to fan coils that cannot handle it.

  • Forgetting the exhaust that feeds the wheel, and therefore overstating recovery.

  • Mis-ordering the ZoneHVAC:EquipmentList, which makes the equipment work in the wrong sequence.

What to check after the run

  • Outdoor air delivered per zone against the 62.1 requirement.

  • Zone relative humidity over the year — this is the system’s weak point.

  • Recovered energy against the extra fan power it costs.

  • Split between central fan and zone fans.

Level 9 — Water-source heat pump loop

WSHP loop — heat transfer between zones

THE SHARED WATER LOOP — held between 60 and 90 °FWSHPzone heat pumpWSHPzone heat pumpWSHPzone heat pumpBOILERadds heatFLUID COOLERrejects heatcooling zones dump heat into the loop; heating zones take it back — the building trades heat with itself
Level 9. Every zone gets its own small heat pump, all plumbed into one neutral loop. When the south side cools and the north side heats, the loop moves that heat across the building for nearly nothing. The plant only makes up the difference.

What you would actually see

A small heat pump above the ceiling of each zone, all connected to one water loop circulating through the building. A boiler adds heat when the loop cools, a tower or fluid cooler removes it when the loop warms.

The problem it solves

In a real building, some zones are cold while others are hot, constantly. Every previous system treats those two needs separately and pays for both. Here, the heat pulled out of the south is literally delivered to the north by the loop. Central plant only pays the net balance.

Where it is used, and why

Criterion Answer
Building type Mixed use, deep-plan offices, hotels, mid-rise, buildings with a large core
Size 30,000 to 300,000 ft²
Climate zones Excellent in zones 3 to 5 where simultaneity is strong. In zones 7 and 8 the boiler dominates and the advantage erodes. Very good in 4C.
Why The only system at this scale that treats simultaneity as a resource. Moderate cost, simple operation, but many small machines spread through the ceilings.

Relative energy use: 65 to 85 (reference = VAV with reheat, non-optimised, Level 6). Very good when simultaneity is real. On a building without simultaneity the advantage disappears.

Strengths and trade-offs

Strengths

  • Moves heat from cooling zones to heating zones nearly free.
  • Neutral loop: cheap uninsulated pipe, modest pumps.
  • Zone independence with central energy accounting.

Trade-offs

  • Compressors distributed through the building — noise and service.
  • Boiler and tower still needed to hold the loop band.
  • Poor diversity (all zones same direction) removes the whole advantage.

The same trade grid, refrigerant-side: Level 10. Ground-coupled: §4.5.

Building it in OpenStudio

  • ZoneHVAC:WaterToAirHeatPump on each zone.

  • A Condenser-type PlantLoop: Pump:VariableSpeed, Boiler:HotWater, and CoolingTower:* or EvaporativeFluidCooler:*.

  • The zone heat pumps sit on the demand side of that loop.

  • PlantEquipmentOperationSchemes with two bands: boiler below a low threshold, tower above a high threshold, and a wide deadband between them.

  • Ventilation: a separate DOAS, or outdoor air on each heat pump depending on the design.

What you can set

Parameter E+ object / field Typical value Impact
Loop deadband High and low setpoint managers 60 to 90 °F Very high
Heat pump cooling COP Coil:Cooling:WaterToAirHeatPump / COP 4.5–5.5 Very high
Heat pump heating COP Coil:Heating:WaterToAirHeatPump / COP 4.0–5.0 Very high
Loop flow Pump / Rated Flow Rate 3 gpm per ton High
Variable pumping Pump:VariableSpeed With zone valves Very high
Heat pump fan power Fan / Pressure Rise 0.4–0.6 in. w.c. High
Staging PlantEquipmentOperationSchemes By loop temperature Very high

Classic mistakes on this system

  • Setting too narrow a deadband: the boiler and the tower fight each other and the entire transfer benefit disappears. This is the mistake that kills the system, in models and in reality alike.

  • Modelling constant pumping when variable pumping is what makes the system interesting.

  • Forgetting that ventilation is not included and must come from somewhere else.

  • Demonstrating this system on a building with no interior zones: there is then nothing to transfer.

What to check after the run

  • Loop temperature hour by hour: it should spend a lot of time floating freely, with neither boiler nor tower.

  • Number of hours where boiler and tower both run on the same day — this should be rare.

  • Share of load met by internal transfer against central generation.

  • Pumping energy, which becomes a significant term here.

Level 10 — VRF with DOAS

Variable Refrigerant Flow — continuous modulation

OUTDOOR UNITvariable-speed compressorINDOOR UNITINDOOR UNITINDOOR UNITrefrigerant lines — two or three small pipesVENTILATIONDOAS100% OAventilation delivered separately, as at Level 8heat-recovery VRF: one indoor unit can heat while another cools, through the same pipes
Level 10. The water disappears: refrigerant itself travels the building through small pipes, and the compressor modulates continuously. With heat recovery, one room’s cooling becomes another room’s heating inside the same circuit.

What you would actually see

A compact outdoor unit on the roof or a plant terrace, linked by thin copper lines to dozens of indoor units that look like fan coils. No water anywhere. Sound: very quiet. Heat recovery versions can heat some zones while cooling others.

The problem it solves

The variable-speed compressor modulates continuously instead of cycling, which collapses part-load losses. And the inter-zone transfer of level 9 becomes possible with no water loop and no boiler.

Where it is used, and why

Criterion Answer
Building type Offices, schools, deep retrofits, heritage buildings, hotels
Size 5,000 to 200,000 ft²
Climate zones Very good in zones 3 to 5. In zones 6 to 8 capacity falls off in the cold and backup heat becomes necessary. In 4C it is excellent — but VRF cannot economize, which costs it dearly in a climate where free air is abundant.
Why Minimal footprint, no water, very fine zone control, retrofit-friendly with small penetrations. The trade-offs: specialist maintenance, large refrigerant charge, and no free cooling.

Relative energy use: 60 to 80 (reference = VAV with reheat, non-optimised, Level 6). Among the best, especially with heat recovery. The lack of an economizer limits the gain in mild climates.

Strengths and trade-offs

Strengths

  • Continuous modulation: superb part-load efficiency.
  • Heat recovery inside the circuit — one room warms another.
  • Small pipes where ducts and risers do not fit.

Trade-offs

  • Refrigerant charge and leak codes (ASHRAE 15) shape the design.
  • Proprietary controls; performance data from the maker's curves.
  • Long line runs bleed capacity; E+ models flatter it if you let them.

Building it in OpenStudio

  • AirConditioner:VariableRefrigerantFlow as the outdoor unit (or a :FluidTemperatureControl variant).

  • ZoneHVAC:TerminalUnit:VariableRefrigerantFlow on each zone.

  • ZoneTerminalUnitList to link the indoor units to the outdoor unit.

  • A separate AirLoopHVAC for the DOAS, exactly as in level 8.

  • Watch the ZoneHVAC:EquipmentList: the DOAS and the VRF unit coexist on the same zone.

What you can set

Parameter E+ object / field Typical value Impact
Rated cooling COP Gross Rated Cooling COP 3.5–4.5 Very high
Rated heating COP Gross Rated Heating COP 3.5–4.2 Very high
Part-load curves Cooling/Heating EIR Modifier f(PLR) From manufacturer Very high
Heat recovery Heat Pump Waste Heat Recovery Yes if VRF-HR Very high
Piping length correction Piping Correction Factor for Length By run length High
Cold capacity fall-off Heating Capacity Modifier f(T) From manufacturer Very high
Defrost Defrost Strategy / Time Fraction ReverseCycle High
Backup heat Supplemental Heating Coil In cold zones High

Classic mistakes on this system

  • Using default curves. VRF is the system where the gap between generic curves and manufacturer data is largest, because all its performance lives in the modulation.

  • Forgetting capacity fall-off and defrost in cold climates.

  • Ignoring the piping length correction factor on an extended installation.

  • Counting an economizer that does not exist: VRF has none, only the DOAS can have one.

  • Not modelling the DOAS and letting the VRF provide ventilation, which it does not.

What to check after the run

  • Simultaneous heating and cooling hours, if heat recovery is declared.

  • Part-load profile of the outdoor unit: it should be widely spread, which is the whole point.

  • Electric backup consumption in winter.

  • Comparison against a variant without heat recovery, to quantify what recovery actually delivers on this specific building.

Level 11 — Radiant with DOAS

Radiant floor or ceiling — comfort through surfaces

THE SLABCONCRETE SLABwater tubing cast into itCHWHWthe surface itself heats and cools the room by radiation — quietly, slowly, with high water temperaturesVENTILATION AND ALL OF THE LATENT LOADDOASdries the airthe slab must never be colder than the dew point — the DOAS keeps it that way
Level 11. The building fabric becomes the terminal: tubing in the slab, warm or cool water, and the room is conditioned by its own surfaces. The DOAS carries every drop of the latent load, because a slab below dew point is a condensation incident.

What you would actually see

Tubes embedded in the concrete slab, or metal panels in the ceiling. Nothing visible, nothing audible. The room is silent and there is almost no air movement. The floor is warm underfoot in winter.

The problem it solves

Air is a poor carrier: you must move a lot of it, with fans, in large ducts. A 1,000 ft² surface at a 4 °F difference carries as much as a substantial airflow, with no fan at all. And radiant comfort lets you shift the air setpoint by 2 to 4 °F, which is free.

Where it is used, and why

Criterion Answer
Building type High-performance offices, atriums, airports, museums, schools, certified buildings
Size Medium to very large, especially with high ceilings
Climate zones Very good in dry zones 3 to 6. In humid zones 1, 2 and 3A, radiant cooling becomes risky: the cold surface must stay above dew point, which forces the DOAS to dry hard.
Why Superior comfort, silence, very low transport energy, and compatibility with moderate water regimes and therefore with heat pumps. The trade-off is mass: this system does not suit intermittent occupancy.

Relative energy use: 55 to 75 (reference = VAV with reheat, non-optimised, Level 6). Among the lowest, but heavily dependent on climate and on the quality of anticipatory control.

Strengths and trade-offs

Strengths

  • Silent, invisible, and comfortable at lower air temperatures.
  • High-temperature cooling water: chillers at their best COP, or none at all.
  • Slab mass rides out load spikes.

Trade-offs

  • Slow: the slab answers in hours, not minutes.
  • Condensation is a hard constraint — dew point rules the water temperature.
  • Retrofit is effectively impossible; commit at design.

Building it in OpenStudio

  • ZoneHVAC:LowTemperatureRadiant:VariableFlow (or :ConstantFlow) on each zone.

  • Define a ConstructionProperty:InternalHeatSource and assign it to the slab construction: the tubes live inside a layer of the construction.

  • Choose the source layer and the exact tube position — this genuinely changes the result.

  • Two PlantLoops: hot water at a low regime (say 95/85 °F) and chilled water at a high regime (say 55/60 °F).

  • A separate DOAS carrying the entire latent load.

  • A dew point control that cuts cooling if zone humidity rises.

What you can set

Parameter E+ object / field Typical value Impact
Tube position ConstructionProperty:InternalHeatSource / Source Present After Layer Depends on the slab Very high
Tube spacing Hydronic Tubing Spacing 6–12 in. High
Active area Surface Name / slab fraction 70–90% of floor Very high
Hot water regime Sizing:Plant 95/85 °F Very high
Chilled water regime Sizing:Plant 55/60 °F Very high
Control variable Temperature Control Type MeanAirTemperature or Operative Very high
Throttling range Throttling Range 1–2 °F High
Dew point Condensation Control Type SimpleOff Very high
Timestep Timestep 6 per hour minimum High

Classic mistakes on this system

  • Simulating at 4 timesteps per hour: radiant converges poorly and results become unstable.

  • Not enabling condensation control, which gives you a model that happily cools below dew point.

  • Using an air temperature setpoint when radiant comfort is judged on operative temperature.

  • Modelling intermittent occupancy on radiant without anticipatory control: the system always arrives late.

  • Forgetting that an active slab rules out a raised floor or a thick insulating finish.

What to check after the run

  • Slab surface temperature over the year, and its margin against zone dew point.

  • Operative temperature against air temperature: the gap is the system’s value.

  • Number of hours where condensation control cut the cooling.

  • Check convergence: look for timestep warnings in the .err file.

Level 12 — Chilled beams with DOAS

Active and passive chilled beams

AT THE CEILINGACTIVE BEAMcoil + nozzles, no fanprimary air from the DOASCHW — warmer than usual, 57–60 °Fthe primary air jet induces room air through the coil — several times the ventilation flow is conditioned with no local fan at allpassive beams do the same by natural convection, cooling only
Level 12. The quietest end of the ladder: the ventilation air itself, pushed through nozzles, drags room air across a water coil. No fan in the room, warm chilled water, near-silent operation — and an absolute intolerance for humidity mistakes.

What you would actually see

A ceiling enclosure holding a finned coil. In the active version, primary air from the DOAS leaves through nozzles at high velocity and entrains room air through the coil. No fan, no motor, no moving parts to maintain. Complete silence.

The problem it solves

Get high cooling capacity without a terminal fan. Level 8 still has a fan in every fan coil; here induction does the work using energy already present in the primary air.

Where it is used, and why

Criterion Answer
Building type Premium offices, laboratories, corporate headquarters. Very common in northern Europe, rarer in the US.
Size Medium to large, regular floor plates
Climate zones Dry zones 3 to 6. Ruled out in very humid climates without an exceptional DOAS, for the same reason as radiant.
Why No terminal fans, no moving parts above occupants, low plenum height needed, and a high water regime compatible with free cooling or a heat pump. The trade-offs are condensation risk and high capital cost.

Relative energy use: 60 to 80 (reference = VAV with reheat, non-optimised, Level 6). Comparable to VRF. The gain comes from eliminating terminal fans.

Strengths and trade-offs

Strengths

  • No fan in the room at all: near-silent, minimal zone maintenance.
  • Induction multiplies the DOAS air several times over for free.
  • Warm chilled water — plant efficiency up, condensation margin bought.

Trade-offs

  • Absolutely intolerant of humidity failures.
  • Ceiling height and coordination: beams take real space.
  • Cooling-dominated tool; heating through beams is weak.

Building it in OpenStudio

  • AirTerminal:SingleDuct:ConstantVolume:FourPipeBeam for active beams — it is both the air terminal and the emitter.

  • ZoneHVAC:CoolingPanel:RadiantConvective:Water for passive beams.

  • Primary air comes from the DOAS, so an active beam sits on the demand side of the air loop AND of both water loops.

  • High chilled water regime, 55/60 °F, which opens the door to a very effective waterside economizer.

  • Dew point control is mandatory.

What you can set

Parameter E+ object / field Typical value Impact
Primary airflow Design Primary Air Volume Flow Rate The ventilation minimum Very high
Induction ratio Implicit in the beam curves 3 to 5 High
Chilled water regime Sizing:Plant 55/60 °F Very high
Capacity per unit length Rated Beam Cooling Capacity From manufacturer High
Installed length Zone Total Beam Length Per the load Very high
Dew point External control or EMS Cut-off mandatory Very high

Classic mistakes on this system

  • Sizing primary air on the thermal load instead of the ventilation requirement. The point of the system is precisely that primary air stays minimal.

  • Using a 44 °F chilled water regime: guaranteed condensation and the main advantage thrown away.

  • Neglecting dew point control.

  • Forgetting that a beam only heats effectively if it is at sill level or the room has little heating demand — a ceiling beam heats poorly, the warmth stays up high.

What to check after the run

  • Zone relative humidity and dew point, hour by hour.

  • Actual primary airflow against the 62.1 requirement.

  • Waterside economizer hours, which should be numerous thanks to the high regime.

  • Total fan power, which should be remarkably low: that is the proof the system is doing what you expect.

4. The plant loops

The fiches in part 3 describe what happens on the air side and at the zone. Water plants are designed separately, and the same air-side system can be served by very different central plants. It is also where the quietest mistakes hide.

4.1 Chilled water — primary variable

PUMPCHILLERmakes 44 °F waterCOOLING COILSsupply · 44 °Freturn · 56 °Fone set of variable-speed pumps · a bypass with a minimum-flow valve protects the chiller at low load
Primary-variable. The modern default: one pump set, speed following the load. Pump energy falls steeply at part load; the price is a minimum-flow bypass and controls that must actually respect the chiller’s limits.

The current arrangement for any new project. One set of variable-speed pumps varies flow through the chillers themselves, with a bypass valve to guarantee each machine its minimum flow. Fewer pumps, less energy, less space.

Parameter E+ object / field Typical value Impact
Design delta-T Sizing:Plant / Loop Design Temp Difference 12–16 °F Very high
Supply setpoint SetpointManager:Scheduled 44 °F Very high
Setpoint reset SetpointManager:OutdoorAirReset 44 to 50 °F High
Pump head Pump:VariableSpeed / Rated Pump Head 60–90 ft Very high
Machine minimum flow Chiller / Minimum Part Load Ratio 0.20–0.25 High
Staging PlantEquipmentOperationSchemes By load Very high
Distribution scheme PlantLoop / Load Distribution Scheme SequentialLoad High

4.2 Chilled water — primary secondary

PRIMARY PUMPconstantCHILLERprimary loop — constant flow through the chillerSECONDARY PUMPvariableCOOLING COILSdecoupler pipe — the two loops meet here and ignore each other
Primary-secondary. The older answer to the same problem: a constant loop keeps the chiller happy, a variable loop follows the building, and a short decoupler pipe lets the two disagree. Simpler controls, one more pump set running all the time.

The 1990s and 2000s arrangement, still very common in existing stock. Constant-flow primary pumps dedicated to each chiller, variable-flow secondary pumps for the building, and a decoupler that hydraulically separates the two. More robust, more consumptive.

In modelling, this is built either as two linked PlantLoops or with the EnergyPlus common pipe mechanism. If you are modelling an existing building, check which of the two arrangements is actually installed before choosing: the pumping energy difference is significant.

4.3 Hot water — the condensing question

Everything turns on the regime, as explained in part 1.3. The table below is the decision shortcut.

PUMPBOILERcondensingHEATING COILSsupply · 140 °Freturn · 120 °Fa condensing boiler only condenses when the RETURN is cold — below about 130 °F. Design the coils for it,or the 96% boiler you bought runs at 87% forever.
Hot water, the condensing question. The boiler’s efficiency lives on the return pipe: cold return, condensing flue, real 90%+ efficiency. Legacy 180/160 °F design keeps the flue dry and quietly throws the premium away.
Regime Viable technology Downstream consequence
180/160 °F Standard boiler Small coils, small pipes. No condensing possible. Incompatible with heat pumps.
140/120 °F Condensing boiler Condensing over much of the season. Coils roughly 30% larger.
120/95 °F Air-to-water heat pump Every emitter must be substantially oversized. This is the real cost of electrification.
95/85 °F Heat pump, radiant Only viable with very large surface emitters.
Parameter E+ object / field Typical value Impact
Nominal efficiency Boiler:HotWater / Nominal Thermal Efficiency 0.80 or 0.95 Very high
Efficiency curve Normalized Boiler Efficiency Curve Bivariate PLR + inlet T Very high
Supply temperature Design Water Outlet Temperature Per regime Very high
Outdoor reset SetpointManager:OutdoorAirReset 180 down to 120 °F Very high
Design delta-T Sizing:Plant 20–40 °F Very high
Minimum part load Minimum Part Load Ratio 0.1–0.25 High

4.4 Condenser water loop

The loop linking the chiller condensers to the cooling tower. Three levers: the tower supply setpoint, the tower fan type, and the presence of a waterside economizer.

PUMPCHILLERcondenser sideCOOLING TOWERsupply · 85 °Freturn · 95 °Fthe tower rejects the building’s heat — plus the chiller’s work — to the sky, by evaporating a little of the water
Condenser water. Everything the chilled water collected, plus the compressor’s own work, leaves the building here. Every degree the tower shaves off the return is roughly a percent and a half off chiller energy — which is why condenser relief matters.
Parameter E+ object / field Typical value Impact
Tower water setpoint SetpointManager:FollowOutdoorAirTemperature 85 °F or reset Very high
Approach CoolingTower / Design Approach Temperature 5–10 °F High
Range Design Range Temperature 10 °F High
Tower fan CoolingTower:VariableSpeed Variable speed Very high
Waterside economizer HeatExchanger:FluidToFluid Climate dependent Very high
Loop declaration PlantLoop / Fluid Type + Loop Type Water / Condenser Structural

4.5 Ground loop

A vertical borefield replaces the tower and the boiler. Ground temperature is stable, so heat pump performance is stable too. Field sizing depends on the annual balance between heat injected and heat extracted: a badly unbalanced building drifts thermally over years, which is modellable and visible.

HEAT PUMPSthe building sideTHE GROUNDvertical bores, 200–500 ft deepthe earth holds about 55 °F all year: a heat source in winter, a heat sink in summersized by the annual balance — a building that only rejects heat slowly cooks its own borefield
Ground loop. The quietest condenser there is: the earth itself, near 55 °F all year. The design question is not one season but the sum of all of them — the borefield must give back in winter roughly what it swallows in summer.

Objects: GroundHeatExchanger:System with a response model (g-functions), or GroundHeatExchanger:Vertical:* for a detailed definition. The governing parameter is total bore length, followed by soil conductivity and borehole spacing.

4.6 Domestic hot water

An independent loop, often neglected in models and sometimes dominant in reality. In a hotel or multifamily building it is the first gas end use.

WATER HEATERor HP water heaterTANKFIXTUREStaps, showersrecirculation — comfort at the tap, and a permanent standby loss many models forget
Domestic hot water. A separate service with its own loads and its own clock. The recirculation line is the classic omission: it keeps showers instant and leaks heat 24 hours a day, whether anyone draws water or not.
Parameter E+ object / field Typical value Impact
Storage volume WaterHeater:Mixed / Tank Volume By use High
Efficiency Heater Thermal Efficiency 0.80 gas; 1.0 electric Very high
Setpoint Setpoint Temperature Schedule 120–140 °F High
Standby losses Off Cycle Loss Coefficient By insulation High
Draws WaterUse:Equipment / Peak Flow Rate By use Very high
Draw profile Flow Rate Fraction Schedule Use profile Very high
Recirculation WaterUse:Connections Loop losses High

5. Controls

This is the layer where models diverge most from reality, and where engineers spend most of their design effort. The same system can vary by 40% on controls alone.

5.1 Resets — the highest-value family

Reset What it does The trade-off
Supply air temperature Raises the setpoint when no zone needs full cooling Less cooling and less reheat, but more airflow and therefore more fan
Static pressure Lowers the setpoint when all dampers are partly open Almost no downside. The highest-value measure that exists.
Chilled water Raises the setpoint at part load Less lift so less compressor, but more flow and less dehumidification
Hot water Lowers the setpoint in mild weather Enables condensing, or improves heat pump COP. Essential, not optional.
Condenser water Lowers the tower setpoint in cool weather Less compressor against more tower fan. There is an optimum.

In E+, most of these use SetpointManager:OutdoorAirReset or SetpointManager:Warmest. Static pressure reset has no dedicated object and is modelled either with a variable setpoint, with EMS, or with a Python plugin.

5.2 Availability and intermittency

  • Night cycle. The AHU restarts outside occupancy only if a zone drifts beyond a widened band. AvailabilityManager:NightCycle.

  • Optimum start. The system starts just early enough to reach setpoint exactly at opening, instead of at a fixed hour. AvailabilityManager:OptimumStart.

  • Morning warmup. Full recirculation with no outdoor air during the pre-occupancy ramp.

  • Night setback. A widened setpoint band, set on the thermostat schedules rather than on a control object.

5.3 Ventilation

The ASHRAE 62.1 multi-zone calculation is not the sum of the zone requirements. It is driven by the critical zone and by the system ventilation efficiency. Using ZoneSum instead of Standard62.1VentilationRateProcedure gives a wrong outdoor airflow on any multi-zone system.

  • DCV. CO₂ sensors modulate outdoor air to real occupancy. Required above a density threshold. Fields on Controller:MechanicalVentilation.

  • Air distribution effectiveness Ez. DesignSpecification:ZoneAirDistribution. 1.0 for overhead cooling, 0.8 for overhead heating, 1.2 for displacement. Often left at default when it changes the code-required airflow.

5.4 ASHRAE Guideline 36

The published high-performance sequences of operation for VAV systems and their terminal units. It is the reference that translates control intent into unambiguous logic. Modelling it faithfully in E+ requires EMS or the Python API, which is exactly the kind of work where a developer profile has the advantage over a conventional modeller.

6. Appendices

6.1 System and climate zone matrix

Quick read. ++ very well suited, + suited, ~ possible with care, − poorly suited.

System 1A 2A 3C 4A 4C 5A 6A 7 Dominant reason
PTAC / PTHP + + + ~ ~ Heat pump capacity in cold
PSZ rooftop + + ++ + ++ + + ~ Economizer
CAV reheat ~ Simultaneous heating and cooling
VAV reheat + + + + + + ~ ~ Cost of reheat in cold
VAV fan-powered ~ ~ + + ++ + ~ Useful plenum heat
DOAS + FCU ~ + ++ ++ ++ ++ + + Latent load on the DOAS
WSHP loop ~ + ++ ++ ++ + ~ Inter-zone simultaneity
VRF + DOAS + ++ ++ ++ + + ~ Capacity and defrost
Radiant + DOAS ~ ++ + ++ ++ + + Dew point
Chilled beams ++ + ++ + + ~ Dew point

A note on zone 4C, the marine climate of the US Pacific Northwest: mild winters, dry summers, enormous economizer potential, very little latent load. Systems that can exploit free outdoor air win there, and those that cannot — VRF in particular — lose part of their theoretical advantage.

6.2 French–English terminology

For working between a French engineering background and a US practice.

French English Trap
Centrale de traitement d’air Air Handling Unit (AHU) The French CTA usually implies double flow; the US AHU is more often a mixing unit
Batterie Coil Never say "battery"
Caisson Cabinet, box, or casing by context Three different words
Bouche Diffuser (supply) or grille (return) Two words for one in French
Ventilo-convecteur Fan coil unit (FCU)
Registre Damper "Register" in English means a grille with a damper
Gaine Duct "Gaine technique" = shaft
Aérotherme Unit heater
Groupe froid Chiller
Tour aéroréfrigérante Cooling tower Fluid cooler if closed circuit
Débit Flow rate (cfm or gpm) Never m³/h in a US meeting
Puissance frigorifique Cooling capacity (tons) Never kW in a US meeting
Perte de charge Pressure drop (in. w.c.) Never Pa
Point de consigne Setpoint
Régime d’eau Water temperatures Spoken as "180 over 160"

6.3 The most expensive modelling mistakes, all categories

  • VAV box minimums left at default. Massive phantom reheat. The first thing to check on any VAV model.

  • Sizing:Plant left at the default delta-T. Flow and pumping energy wrong by a factor of two, with no error message.

  • SetpointManager:MixedAir missing around the fan. Coils control to the wrong temperature and fan heat disappears.

  • ZoneSum instead of Standard62.1VentilationRateProcedure. Wrong outdoor airflow on any multi-zone system.

  • Recovery with no fan penalty and no defrost. Overstated savings.

  • DX or VRF curves left at default. Efficiency is a family of curves, not a number.

  • Condensing boiler on a 180/160 regime. The declared efficiency is never reached.

  • Air-source heat pump with no capacity fall-off and no backup. A wrong and flattering model — the signature error of electrification studies.

  • Ideal Loads used to compare systems. It does not measure the same thing.

  • One chiller modelled where several are staged. Completely different part-load behaviour.

6.4 Acronyms

Acronym Meaning
AHU Air Handling Unit
ASHP Air-Source Heat Pump
BAS / BMS Building Automation / Management System
CAV Constant Air Volume
CHWS / CHWR Chilled Water Supply / Return
CRAC / CRAH Computer Room Air Conditioner / Handler
DCV Demand Controlled Ventilation
DOAS Dedicated Outdoor Air System
DX Direct Expansion
EAT / LAT Entering / Leaving Air Temperature
ERV / HRV Energy / Heat Recovery Ventilator
EWT / LWT Entering / Leaving Water Temperature
FCU Fan Coil Unit
FPB / PIU Fan-Powered Box / Powered Induction Unit
GSHP Ground-Source Heat Pump
HWS / HWR Hot Water Supply / Return
MAU Makeup Air Unit
OA / OSA Outdoor Air
PSZ Packaged Single Zone
PTAC / PTHP Packaged Terminal Air Conditioner / Heat Pump
RA / SA / EA Return / Supply / Exhaust Air
RTU Rooftop Unit
SAT / RAT / MAT Supply / Return / Mixed Air Temperature
TAB Testing, Adjusting, Balancing
VAV Variable Air Volume
VFD / VSD Variable Frequency / Speed Drive
VRF Variable Refrigerant Flow
WSHP Water-Source Heat Pump

6.5 Still to be added

This document is built to grow. Identified gaps:

  • Laboratory systems: variable air volume fume hoods, pressure cascades, 100% outdoor air, runaround glycol recovery.

  • Healthcare systems: air change requirements, filtration, redundancy.

  • Parasitic loads: toilet exhaust, smoke control, garage ventilation, elevators, electric trace heating.

  • Thermal storage and grid-interactive operation.

  • Commercial kitchen systems and their makeup air.

  • A section on simulation convergence pitfalls, system by system.