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Fan Coil Flow & ΔT Calculator

Convert between coil heat load, water flow rate and supply / return temperature difference — for fan coil units, chilled beams and AHU coils. Enter any two of the three and the third is calculated.

Coil duty

Pick the value you want to find, then enter the other two. Defaults describe a chilled-water fan coil at a 5 K ΔT.

Calculate
Chilled water is usually designed around 5 K; heating coils often run 10–20 K.
Advanced — glycol and fluid properties
Water = 1.00. 30 % ethylene glycol ≈ 1.04 at 20 °C.
Water = 4.186. 30 % ethylene glycol ≈ 3.75.

Glycol figures vary with concentration and temperature — check your supplier's table. Both defaults give the familiar water formula.

How the calculation works

A water coil carries a heat load in proportion to the flow rate, the fluid's ability to hold heat and the temperature difference across it:

P [kW] = Q [m³/h] × SG × cp [kJ/kg·K] × ΔT / 3.6

For plain water this reduces to the rule of thumb most HVAC engineers carry in their head — 1.163 kW per m³/h per K, or in imperial units about 500 BTU/h per GPM per °F. Rearrange it and you can pull out the flow rate from a known load, or check what ΔT a given flow will actually produce.

Practical notes

  • ΔT is a design decision, not a measurement. A wider ΔT means less flow, smaller pipes and less pump energy — but a larger coil and a slower control response.
  • The heat load must be the coil's water-side load. If you are starting from a room load, add the coil's fan and duct gains first.
  • Flow, not ΔT, is what the control valve actually modulates. Sizing the valve from this flow rate is the next step — see the Cv / Kv calculator.
  • Glycol mixtures shift both numbers. A 30 % ethylene glycol solution is roughly 4 % denser and 10 % lower in specific heat, so flow rises about 15 % for the same duty.
  • Below a ΔT of about 2 K the numbers get very sensitive to sensor error, so treat wide-flow results cautiously.