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Sheet M-106
PPDPDD PACE

HVACconcept

Evaporative cooling: swamp coolers and evaporative condensers

One-line orientation

Direct evaporative space cooling generally works best in dry climates because dry air can absorb more moisture. An evaporative condenser is a different application within a refrigeration system.

Key points

  • How it works: warm, dry air passes through or over a wet surface (saturated pads, a spray, or a water film). Water evaporates, absorbing latent heat from the air, which lowers the air’s dry-bulb temperature and raises its humidity.
  • Swamp cooler (direct evaporative cooler):
    • Draws warm outside air through water-soaked cellulose or fabric pads.
    • Delivers cooled, humidified air directly into the space.
    • Very low energy consumption compared to refrigerant-based cooling.
    • Best fit: arid / semi-arid regions (e.g., US Southwest, desert climates), where the wet-bulb depression is large enough for useful cooling.
    • The space gains moisture — humidity increases in the conditioned space.
  • Evaporative condenser:
    • Part of a refrigeration system; uses water spray + airflow over the refrigerant condenser coil to reject heat via evaporation rather than dry-air convection.
    • More efficient than a dry air-cooled condenser in moderate-to-hot conditions.
    • Not a space cooling device by itself — it improves the efficiency of a chiller or refrigeration compressor.
  • Climate suitability: the dry-climate rule applies most strongly to direct evaporative space cooling. Evaporative condensers are a separate use judged by wet-bulb conditions.

Confusions / comparison

Evaporative versus DX cooling — follow the water

SCHEMATIC SECTIONS

Both cool supply air; evaporation adds moisture while a cold DX coil removes it as condensate.

View diagram Hide diagram 2 panels

2 panels side by side — swipe to compare

Direct evaporative cooling compared with DX refrigerant cooling as paired equipment sections Two equipment and room sections share one airflow datum. In the left section, hot dry outdoor air crosses a blue wetted pad and enters the room cooler and more humid; a blue arrow rises from a shallow sump into the pad, labelled water wets the pad then joins the air, so the water reaches the airstream through the pad and evaporates into it. In the right section, warm humid return air crosses a cold coil and enters the room cooler and drier; blue condensate drops into a drain. Direct evaporative cooling uses less fan and pump energy but fits hot-dry climates, while DX cooling uses compressor energy and works in humid climates. Direct evaporativeWater joins the supply airDX refrigerant coolingWater leaves the supply airHOT · DRYoutdoor airWETTED PADCooler · more humidlow fan + pump energyhot-dry climates onlyINDOOR water wets the pad, then joins the airWARM · HUMIDreturn airCOLD COILCooler · driercompressor energyworks in humid climatesINDOOR condensate drainsHumidity risesevaporation adds moistureHumidity fallscondensation removes moisture
  • blue = water changing the airstream

Humid air cannot absorb much more water vapor, so direct evaporative cooling loses its effect.

Do not confuse either with an evaporative CONDENSER, which improves a refrigeration cycle’s efficiency and cools no space itself.

CriterionSwamp cooler (direct evaporative)Refrigerant (DX) air conditioning
Effect on space humidityAdds moisture — air leaves the wet pad humidified, so room RH risesRemoves moisture — moist air condenses on the cold coil, so the space is dehumidified while cooled
Relative energy useLow — minimal power for a fan and water pumpHigher — driving a refrigeration compressor draws far more energy
Climate where it fitsGenerally hot and dry; performance falls as outdoor wet-bulb temperature risesWorks across climates, including humid ones where direct evaporative cooling is limited

→ HVAC unit types (window unit / mini-split as refrigerant-based alternatives) · HVAC economizer cycle (free cooling via outdoor air — a different strategy for the same goal) · Thermal: building load types (climate context for system selection).