💨 HVAC

Air Handling Unit (AHU) Sizing Calculator

Size AHU airflow, cooling coil, fan kW and chilled water flow from cooling load. ASHRAE 62.1 / NBC Part 8 compliant. Free tool.

📐 Standard: ASHRAE 62.1 / NBC Part 8
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AHU Sizing Calculator Calculator
Reference: ASHRAE 62.1 / NBC Part 8
💨 HVAC
Size AHU airflow, cooling coil, fan kW and chilled water flow from cooling load. ASHRAE 62.1 / NBC Part 8 compliant. Free tool.
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ℹ️ About This Calculator

The Air Handling Unit (AHU) is the central element of a ducted HVAC system. It conditions the supply air (cools, heats, humidifies or dehumidifies) and distributes it through the duct network. Correct AHU sizing determines the supply air temperature differential, airflow rate, coil duty, and fan power - all of which must be coordinated to meet the room cooling load without overcooling or undercooling.

ASHRAE 62.1 specifies minimum outdoor air ventilation rates for acceptable indoor air quality. NBC Part 8 provides the Indian equivalent. For offices: minimum 10 L/s per person plus 0.3 L/s per m² of floor area. AHUs must be designed to handle the minimum fresh air requirement in addition to the recirculated air for cooling. The mixing of fresh and return air happens in the AHU mixing box before the filters and coil.

📐 AHU Sizing Formula (ASHRAE)

ASHRAE 62.1 / NBC Part 8

Supply Airflow:
  Q_air (m³/h) = Cooling Load (kW) × 3600 / (ρ × Cp × ΔT)
  ΔT = Room DB − Supply Air Temp (typically 24−13 = 11°C)
  ρ = 1.2 kg/m³, Cp = 1.006 kJ/kg·K

CHW Flow Rate:
  Q_chw (L/s) = Cooling Load (kW) / (4.187 × ΔT_chw)
  ΔT_chw = Return − Supply (typically 12−7 = 5°C)

Fan Power (estimate):
  P_fan (kW) = Q_air × ESP / (3600 × η_fan)
  ESP = External Static Pressure (Pa), η_fan = 0.65–0.75

AHU Coil Face Velocity: 2.0–2.5 m/s (typical)

🧮 Worked Example

Consider an office AHU serving a zone with a 100 kW cooling load, room design condition 24°C and supply air at 13°C (ΔT = 11°C). Supply airflow: Q_air = 100 × 3600 / (1.2 × 1.006 × 11) ≈ 27,100 m³/h. For chilled water at 7°C supply / 12°C return (ΔT_chw = 5°C): Q_chw = 100 / (4.187 × 5) ≈ 4.8 L/s.

If the AHU fan must overcome an external static pressure of 400 Pa at 70% fan efficiency, fan power P_fan = (27,100/3600) × 400 / 0.7 ≈ 4.3 kW. This confirms the selection needs roughly 27,000 m³/h airflow, 5 L/s CHW flow, and a fan motor of about 5.5 kW with margin.

📊 AHU Sizing Reference (ASHRAE — Airflow, Coil & CFM/Ton)

Two numbers size an AHU: the supply airflow that carries the room sensible load away at your chosen supply-air ΔT, and the coil duty that removes the total (sensible + latent) load from that air. Fresh-air ventilation is added on top, in the mixing box, ahead of the coil.

Typical AHU Design Parameters

ParameterTypical value (comfort cooling)
Supply-air ΔT (room − supply)10 – 12 °C (18 – 22 °F)
Airflow per ton (TR)≈ 340 – 400 CFM/TR
Coil face velocity2.0 – 2.5 m/s (400 – 500 fpm)
Chilled-water ΔT5 – 6 °C (7 °C flow / 12 °C return)
Cooling-coil rows4 – 8 rows (more rows for higher latent load)
Fresh air (offices)ASHRAE 62.1 / NBC Part 8 — ≈ 10 L/s per person
Sizing margin+10 – 15 % on airflow and coil duty

Airflow & Coil-Load Formulas

QuantitySIIP (US units)
Supply airflowQ(m³/h) = Load(kW) × 3600 / (1.2 × 1.006 × ΔT°C)CFM = Sensible(BTU/h) / (1.08 × ΔT°F)
Cooling-coil load= ṁair × Δh (enthalpy drop)BTU/h = 4.5 × CFM × Δh(BTU/lb)
Mixed-air tempTmix = (%OA × Toutdoor) + (%RA × Treturn)

The classic rule of thumb — ≈ 400 CFM per ton of refrigeration — only holds at a normal comfort ΔT. High-latent spaces (kitchens, coastal offices, gyms) use colder supply air, so they need less airflow per ton but a deeper coil. Where outdoor air is significant, size the coil on the mixed-air on-coil condition, not the room condition, or the coil will be undersized.

Indicative design values — confirm against the ASHRAE Handbook, the coil manufacturer's selection software, and NBC 2016 Part 8 / ASHRAE 62.1 ventilation rates for the final design.

Frequently Asked Questions

What is a typical AHU supply air temperature for Indian conditions? +
12–14°C is typical for central AHU systems serving office buildings. For precision cooling in data centres: 18–24°C supply. Lower supply temperatures mean less airflow is needed for the same cooling load, but risk condensation on surfaces and discomfort from cold drafts near diffusers. 13°C supply air with a 24°C room setpoint gives an 11°C differential - the standard design point.
What is the difference between AHU and FCU (Fan Coil Unit)? +
AHU: Large central unit with fresh air intake, filters, cooling coil, fan, and sometimes humidifier. Serves entire floors or buildings through ductwork. FCU: Small room-level unit with cooling coil and fan only - no fresh air intake. FCUs recirculate room air over the coil. Central systems with AHUs provide better air quality and filtration; FCUs are simpler and cheaper but require a separate fresh air system (DOAS - Dedicated Outdoor Air System).
How do I select the AHU filter efficiency? +
ASHRAE 52.2 / IS 14823 filter ratings: G4 (coarse, EU4) - protects AHU coil from large dust; F7 (medium, EU7) - standard for commercial offices; H13 (HEPA) - hospitals, clean rooms. Most office AHUs use G4 pre-filter + F7 final filter. Hospitals and pharma require F7 + H13 HEPA. Green buildings (IGBC/LEED) require minimum MERV-8 (approximately F5) for IAQ credits.
What external static pressure should I design the AHU for? +
ESP is the pressure the AHU fan must overcome (excluding the AHU internal resistance). Typical values: small office AHU (short duct run): 200–350 Pa. Medium commercial: 350–600 Pa. Large central plant AHU with long duct runs: 600–900 Pa. AHU manufacturers rate their fan at a specific ESP - ensure the selected AHU can deliver the design airflow at the calculated system ESP.
How often should AHU filters be changed? +
In Indian urban conditions (high dust levels): G4 pre-filters - monthly or when pressure drop doubles from initial clean value. F7 bag filters - quarterly or semi-annually. HEPA filters - annually or when pressure drop exceeds 250 Pa. Always replace filters on schedule - a clogged filter increases fan power consumption by 20–40% and reduces airflow to the space, impairing both comfort and air quality.
How many CFM per ton does an AHU need? +
For normal comfort cooling, roughly 400 CFM per ton of refrigeration at a 10–12 °C supply-air ΔT. High-latent spaces — coastal offices, kitchens, gyms — run colder supply air and therefore need less airflow per ton but a deeper, multi-row coil.
What coil face velocity should I use for an AHU? +
Keep the cooling-coil face velocity between 2.0 and 2.5 m/s (400–500 fpm). Above about 2.8 m/s the coil starts carrying condensate off the fins into the duct; below 1.5 m/s the AHU and coil become oversized and costly.
How do I size an AHU for fresh-air ventilation? +
Add the outdoor-air requirement (ASHRAE 62.1 / NBC Part 8 — about 10 L/s per person for offices) to the recirculated air in the mixing box, then size the coil on the resulting mixed-air on-coil temperature, not the room temperature. Ignoring fresh air is the most common cause of an undersized coil.

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