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Sheet M-109
PPDPDD PACE

HVACconcept

The compression-refrigeration cycle: four stages and how heat pumps reverse it

One-line orientation

The vapor-compression refrigeration cycle drives conventional air conditioners, refrigerators, and heat pumps. Learn the four steps and how a heat pump reverses the heat-flow direction.

Key points

  • Four stages (refrigeration / cooling mode):
    1. Evaporation — low-pressure liquid refrigerant enters the evaporator coil (indoors); absorbs heat from the room and vaporizes, cooling the air.
    2. Compression — the compressor raises the vapor’s pressure and temperature.
    3. Condensation — hot high-pressure vapor enters the condenser coil (outdoors); releases heat to the outside air and condenses back to liquid.
    4. Expansion — the liquid passes through an expansion valve; pressure drops sharply, the refrigerant cools, and the cycle restarts.
  • Heat pump reversal: a reversing valve swaps the roles of the two coils. In heating mode the indoor coil becomes the condenser (releases heat inside) and the outdoor coil becomes the evaporator (extracts heat from outside air or ground).
  • Air-source heat pump: uses outdoor air as the heat source (heating) or heat sink (cooling). Efficiency degrades in extreme cold (hard to extract heat) and extreme heat (hard to reject heat).
  • Geothermal (ground-source) heat pump: uses the ground or groundwater as the exchange medium. Ground temperature is relatively stable in a ~50–60°F range regardless of season, so efficiency is more consistent and the system performs well in climates where air-source systems struggle.

Confusions / comparison

Compression refrigeration — one loop, four components

SCHEMATIC LOOP

The loop crosses between a cold low-pressure side and a hot high-pressure side.

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Compression-refrigeration cycle grouped into cold low-pressure and hot high-pressure sides A clockwise four-stage refrigerant loop overlays two grouping zones. The left blue zone is cold and low pressure and contains the evaporator and expansion valve. The right warm zone is hot and high pressure and contains the compressor and condenser. In this cooling mode the evaporator is labelled as the indoor coil and the condenser as the outdoor coil. Numbered physical components and state labels show the order evaporate, compress, condense, expand. An arrow into the evaporator is labelled absorbs heat; an arrow out of the condenser is labelled releases heat. COOLING MODE · CLOCKWISE REFRIGERANT FLOWCOLD · LOW PRESSUREHOT · HIGH PRESSURERELEASESHEAT TOTHE AIR1Evaporator (indoors)liquid → vaporboils at low pressure2 Compressorpressure + temperature risevapor becomes hot3Condenser (outdoors)vapor → liquidcondenses at high pressure4 Expansion valvepressure + temperature dropliquid becomes coldlow-pressure vaporhot vaporhigh-pressure liquidcold mixABSORBSHEAT FROMTHE AIR
  • blue zone = cold · low pressure
  • warm zone = hot · high pressure

Evaporator absorbs heat; condenser releases it. The component names describe the refrigerant's state change.

Heat-pump heating uses the same four components; a reversing valve swaps which coil is indoors.

StageComponentRefrigerant stateWhat happens to heat
EvaporationEvaporator coil (indoors)liquid → vaporAbsorbs heat from room — room cools
CompressionCompressorvapor, pressure ↑Temperature rises — no heat exchange yet
CondensationCondenser coil (outdoors)vapor → liquidReleases heat to outdoors
ExpansionExpansion valveliquid, pressure ↓Temperature drops — ready to absorb again
Air-source heat pumpGeothermal heat pump
Heat exchange mediumOutdoor airGround or groundwater
Climate sensitivityHigh — less efficient in extreme cold or heatLow — stable ~50–60°F ground temp
Installation costLowerHigher (drilling / ground loops)
Long-term efficiencyModerateHigh

→ HVAC: balance temperature (when heating vs cooling kicks in) · HVAC distribution systems (all-air / all-water) · Thermal: degree days (measure heating/cooling demand over a season).