The refrigerant absorbs thermal energy while evaporating and releases thermal energy while condensing. These phase transitions let the same working substance alternate between taking in heat and giving it off as it circulates through the system. Their position within the cycle determines whether heat is gathered from the cooler region or delivered to the warmer one.
The compressor raises the refrigerant's pressure and temperature before heat is released during condensation. Afterward, the expansion valve lowers the pressure, preparing the refrigerant to absorb heat again during evaporation. Together, these components maintain the pressure changes needed to move the refrigerant through its repeating sequence rather than allowing the process to stop after one transfer.
The coefficient of performance, or COP, relates the useful heat transferred to the electrical energy consumed. A heat pump can therefore deliver more thermal energy than the electrical input alone because electricity drives the transfer rather than supplying all the heat directly. COP provides a physics-based way to evaluate the system's energy performance.
Conservation of energy requires the thermal energy released in the warmer region to reflect energy absorbed from the cooler region together with the electrical energy supplied to the compressor and system. The device does not create heat; it redistributes thermal energy while using electrical work to sustain the refrigerant cycle. This accounting underlies its reported efficiency.
Heat pumps support several thermal applications, including building climate control, refrigeration, and water heating. In each case, the system transfers energy to or from a region where temperature control is needed. This broad range of uses follows from the same vapor-compression cycle, which can move heat toward a warmer region or support cooling by removing it.
Heat pumps are relevant to low-carbon energy systems because they can move more heat than the electrical energy they consume, as described by their coefficient of performance. Their use in climate control and water heating can therefore provide thermal services through energy transfer rather than relying solely on direct heat production. The physics links performance assessment to broader energy-system design.