Heat pump COP at 7 degrees - how efficient is your system?

    Three pump types, five temperature ranges, one efficiency number. Enter heating output and power draw or source and supply temperatures to calculate COP, efficiency class, and cost per kWh of heat for air-source, ground-source, and water-source heat pumps.

    At 7 C outdoor temperature, an air-source heat pump typically delivers a COP between 2.0 and 5.0 depending on the supply temperature and unit quality. Ground-source and water-source pumps are less affected because their heat source stays stable year-round. Enter your supply temperature below to see the exact COP estimate for all three pump types at 7 degrees, along with the cost per kWh of heat at your electricity rate.

    Parameters

    Enter data for calculations

    Choose how to determine COP

    Type of heat pump determines Carnot efficiency factor

    Cost of electricity for heating cost comparison

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    What COP tells you about your heat pump

    COP stands for Coefficient of Performance. A COP of 3.5 means the heat pump delivers 3.5 kWh of heat for every 1 kWh of electricity it consumes. The extra 2.5 kWh comes free from the outdoor air, ground, or water source. This calculator works in two modes: enter the heating output and electrical input from the spec sheet for an exact COP, or enter source and supply temperatures for a Carnot-based estimate. Add your electricity rate and the calculator shows the cost per kWh of heat and compares it against gas, oil, propane, and electric baseboard heating.

    How to use this calculator - step by step

    1. Calculation method - choose "From power data" if you have the manufacturer spec sheet with heating output and electrical input in kW. Choose "From temperatures" if you want to estimate COP based on your local conditions.
    2. Heat pump type - select air-source (most common), ground-source (geothermal), or water-source. This affects the Carnot efficiency factor used in temperature-based calculations.
    3. Power data or temperatures - enter either output/input (kW) or source/supply temperatures (C). The calculator handles the rest.
    4. Electricity rate (optional) - enter your rate in $/kWh to see cost per kWh of heat and a comparison against other heating fuels.
    5. Read results - COP value with efficiency class, cost per kWh, heating cost comparison table, and the COP efficiency scale showing where your pump falls.

    COP by heat pump type and outdoor temperature

    Estimated COP values at 35 C supply temperature (underfloor heating) based on Carnot model with real-world efficiency factors.

    Source temp (C) Air-source Ground-source Water-source Carnot max
    -15 2.59 2.96 3.08 6.16
    -10 2.88 3.29 3.42 6.85
    -5 3.24 3.70 3.85 7.71
    0 3.69 4.22 4.40 8.80
    5 4.31 4.93 5.14 10.27
    10 5.18 5.92 6.16 12.33
    15 6.47 7.40 7.71 15.41

    Real-world examples

    Air-source in mild winter (7 C)
    12 kW output, 2.5 kW input, $0.16/kWh
    COP: 4.80 - cost per kWh heat: $0.033
    Air-source in deep freeze (-15 C)
    8 kW output, 3.5 kW input, $0.16/kWh
    COP: 2.29 - cost per kWh heat: $0.070
    Ground-source, underfloor (10 C source, 35 C supply)
    Temperature method, $0.14/kWh
    COP: 5.92 - cost per kWh heat: $0.024
    Air-source with radiators (-5 C source, 55 C supply)
    Temperature method, high supply temp, $0.18/kWh
    COP: 2.30 - cost per kWh heat: $0.078
    Water-source, well water (12 C source, 40 C supply)
    Temperature method, $0.12/kWh
    COP: 5.59 - cost per kWh heat: $0.021

    Frequently asked questions

    What is the difference between COP and SCOP?
    COP is measured at a single operating point (e.g., A7/W35 means 7 C air, 35 C water). SCOP (Seasonal COP) is the weighted average COP across an entire heating season, accounting for varying outdoor temperatures. SCOP is a more realistic measure of annual performance. A unit with COP 4.5 at A7/W35 might have an SCOP of 3.2-3.8 depending on your climate. EU energy labels use SCOP for efficiency classes.
    Does COP drop significantly in cold weather?
    Yes. Air-source heat pumps lose about 30-40% of their COP when outdoor temperature drops from 7 C to -15 C. A unit rated COP 4.5 at 7 C might deliver only COP 2.5 at -15 C. Ground-source pumps are much more stable because soil temperature stays at 8-12 C year-round. This is why SCOP matters more than a single COP number for cold climates.
    Is a heat pump cheaper than a gas furnace?
    At US average electricity ($0.16/kWh) and gas ($1.20/therm) prices, a heat pump with COP 3.5 costs about $0.046/kWh of heat versus gas at $0.041/kWh (at 92% efficiency). Nearly equal. At COP 4.0+, the heat pump wins. In states with cheap electricity or expensive gas, heat pumps are clearly cheaper. In states with very cheap gas (Texas, Oklahoma), gas furnaces can still be more economical for heating only - but heat pumps also provide cooling.
    What supply temperature should I aim for?
    Lower supply temperature = higher COP. Underfloor heating at 30-35 C gives the best performance (COP 4-5+). Fan coils work well at 35-45 C. Modern low-temperature radiators need 45-55 C. Old high-temperature radiators at 60-70 C severely hurt COP (often below 2.5). If you have old radiators, consider replacing them or adding underfloor heating in the main living areas before installing a heat pump.
    What is the Carnot COP and why is actual COP lower?
    The Carnot COP is the theoretical maximum efficiency for a heat pump operating between two temperatures: COP_carnot = T_hot / (T_hot - T_cold), where temperatures are in Kelvin. Real heat pumps achieve 40-50% of the Carnot limit due to compressor losses, heat exchanger inefficiency, fan power, defrost cycles, and refrigerant properties. Air-source pumps typically reach 42% of Carnot, ground-source 48%, and water-source 50%.
    Can a heat pump work at -20 C or colder?
    Modern cold-climate air-source heat pumps (models with enhanced vapor injection or EVI compressors) can operate down to -25 C to -30 C. COP at those temperatures drops to 1.5-2.0, but the unit still provides heat. Many installations include a backup electric resistance heater that kicks in when COP falls below a useful threshold. Ground-source pumps avoid this problem entirely since the ground stays warm.

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    Calculator verified by the LiczGrupa.pl team

    Content, formulas and results have been reviewed for accuracy and relevance by our team of specialists.

    Natalia Skrzek

    Reviewed by: Natalia Skrzek