Heat Loss & Radiator Size
Estimate room heat loss and the radiator catalogue output to look for.
Method: room heat-loss and radiator Delta T estimate
Estimate the heat output a room needs, then convert that load into the radiator catalogue output to look for.
Estimate room heat loss and the radiator catalogue output to look for.
Method: room heat-loss and radiator Delta T estimate
A quick radiator sizing estimate starts with the room volume: length x width x height. The calculator multiplies that volume by a W/m3 heat-loss factor and then adjusts it for the indoor-to-outdoor design temperature difference.
Use the room preset as a revision shortcut. An insulated or internal room uses a lower W/m3 allowance; an older, exposed or draughty room uses a higher allowance. A full design would break the room down into walls, windows, roof, floor, ventilation and infiltration losses.
Radiator catalogues often quote output at Delta T50. If the system runs at lower flow and return temperatures, the same radiator gives less heat. The calculator uses a standard exponent-style correction so a Delta T40 or Delta T30 system shows the larger Delta T50 catalogue output you would need to look for.
Treat the result as a sizing sense-check for revision and early planning. Real selection still depends on the building fabric, design temperatures, emitter data, hydraulic design, controls and current manufacturer instructions.
A 4 m x 3 m room with a 2.4 m ceiling has a volume of 28.8 m3. With the average 40 W/m3 preset and a 21C indoor / -3C outdoor design difference, estimated heat loss is 28.8 x 40 = 1.15 kW, or about 3,930 BTU/h. At Delta T40, the radiator catalogue output needed at Delta T50 is about 1.54 kW because lower-temperature operation reduces emitter output.
Radiator Delta T = ((flow temperature + return temperature) ÷ 2) − room temperature. A 75°C flow and 65°C return in a 20°C room give Delta T50. At 55°C flow and 45°C return in the same room, the radiator operates at Delta T30.
That is different from the 10°C drop between flow and return, and from the indoor-to-outdoor temperature difference used to estimate room heat loss. Choose the radiator output basis using mean water temperature above the intended room temperature.
The estimate uses output at the chosen Delta T = Delta T50 output × (chosen Delta T ÷ 50)^1.3. At Delta T30 the factor is about 0.515, so a radiator rated at 1500 W at Delta T50 delivers an estimated 772 W. The same factor works for ratings in BTU/h.
For selection, reverse the calculation: divide the room heat loss by the factor. The 1.152 kW room example needs about 2.24 kW of Delta T50 catalogue output when operating at Delta T30. Use the radiator manufacturer’s correction table or declared output for the final choice; the generic exponent is an estimate.
Radiator listings often shorten BTU/h to “BTU”, but the output is a rate of heat delivery. 1 kW is 1000 W, or about 3412 BTU/h. Convert the units before comparing a room load with a catalogue rating, and compare both at the intended radiator Delta T.
If a room uses two radiators, add their outputs at the actual operating temperatures. Two units rated at 1000 W each at Delta T50 give an estimated combined 1030 W at Delta T30, rather than 2000 W. Check positioning and system design as well as the total.
After using the radiator size calculator, explain which design temperatures and room assumptions produced the result. The central-heating practice questions connect emitters with system layouts, controls and fault reasoning.
Use this worksheet to record the inputs behind a radiator output estimate before checking manufacturer data.
| Worksheet line | Record | Why it matters |
|---|---|---|
| Room dimensions | Length, width and height | Sets the heated room volume |
| Design temperatures | Indoor target and outdoor design value | Controls the heat-loss temperature difference |
| Room exposure | Internal, insulated, average, older or exposed | Chooses a realistic W/m3 allowance |
| Heat loss | kW and BTU/h | Sets the room output the emitter must cover |
| Emitter Delta T | Delta T50, Delta T40, Delta T30 or custom | Lower-temperature systems need larger emitters |
| Catalogue output | Radiator output at Delta T50 | Lets you compare common manufacturer tables |
| Final checks | Wall space, valves, pipework and controls | A heat output number is not the whole design |
Do not use this worksheet as a replacement for a room-by-room design calculation. It is a transparent revision estimator and product-table sense-check.
You need enough output to match the room heat loss. Enter the room size, design temperatures and room condition, then use the BTU/h result as a first-pass radiator output estimate.
It estimates the heat output to compare with a radiator’s rating, rather than selecting its physical dimensions. Different heights, widths, panel types and convector arrangements can deliver different outputs. Compare manufacturer ratings at the intended Delta T, then check the available space and installation requirements.
Delta T50 means the radiator output was rated with the radiator mean water temperature 50C above room temperature. Lower Delta T operation gives less heat from the same radiator.
The temperature difference between radiator and room is smaller, so heat transfer falls. To deliver the same room heat loss, the Delta T50 catalogue output normally has to be higher.
This estimator uses about 51.5% of the Delta T50 rating at Delta T30. A 1500 W radiator therefore gives about 772 W. Check the exact radiator’s manufacturer data because its correction factor may differ.
No. Radiator Delta T uses the average of flow and return temperatures minus the room temperature. With 55°C flow, 45°C return and a 20°C room, the radiator Delta T is 30.
No. It is a revision and early-planning estimator. A full design checks each building element, ventilation losses, emitter data, controls, flow temperatures and manufacturer instructions.
Method: room heat-loss and radiator Delta T estimate
Something wrong, unclear or out of date? Report an issue with this calculator.
Put the system principles into practice with 25 free Central heating questions, including answers and explanations.
Training & revision aids — live installations follow the full standard, the manufacturer’s instructions and calibrated instruments.