| name | evaporative-cooling |
| description | Evaporative cooling — direct/indirect/two-stage evaporative coolers, wet bulb temperature, cooling effectiveness, water consumption, Mollier chart analysis, ASHRAE 55 comfort, desert climate cooling, data center economizer. |
| metadata | {"priority":7,"promptSignals":{"phrases":["evaporative cooling","swamp cooler","wet bulb cooling","direct evaporative cooler","indirect evaporative","adiabatic cooling"],"minScore":3}} |
Evaporative Cooling — Complete Skill
Psychrometric Fundamentals
Wet-bulb temperature (T_wb): temperature air reaches after adiabatic saturation (all heat converts to latent)
Dew point (T_dp): temperature at which air is saturated (relative humidity = 100%)
Wet bulb depression (WBD): T_db - T_wb [°C]; measure of cooling potential; larger = drier air = more cooling
Humidity ratio (W): mass of water vapor per mass of dry air [kg/kg or gr/lb]
Relative humidity (RH): φ = P_v / P_v_sat × 100% [%]
Relationship:
T_wb = T_db - (T_db - T_dp) × [Rh^(1/8)] [Magnus approximation; rough]
More accurately from psychrometric chart or equations
Direct Evaporative Cooling (DEC)
Process: air passes through wetted media → water evaporates → air temperature drops; humidity rises
Adiabatic process: total enthalpy constant: h = constant along wet-bulb line on psychrometric chart
Supply air condition: reaches near T_wb (not fully); limited by media effectiveness
Cooling effectiveness (saturation efficiency):
ε = (T_db_in - T_db_out) / (T_db_in - T_wb_in) [dimensionless; 0.85–0.95 for good media]
Exit air temperature:
T_out = T_db_in - ε × (T_db_in - T_wb_in) = T_db_in - ε × WBD
Water consumption:
ṁ_water = ṁ_air × (W_out - W_in) [kg/s; W from psychrometric chart at T_out, φ ≈ 100%ε + φ_in(1-ε)]
Example:
Input: 40°C / 20% RH; T_wb = 25.4°C; WBD = 14.6°C; ε = 0.90
T_out = 40 - 0.9 × 14.6 = 40 - 13.1 = 26.9°C → significant cooling!
H: 26.9°C with φ ≈ 95% → still comfortable in many climates
Limitation: outlet air is humid → unacceptable in humid climates (T_wb close to T_db)
Best for: desert climates (T_wb < 22°C); T_wb < 18°C → very effective
Indirect Evaporative Cooling (IEC)
Process: secondary water circuit evaporated; heat transferred to primary air stream WITHOUT humidifying it
Dry-bulb temperature drops; humidity unchanged
Less effective than DEC but no humidity addition → suitable for more humid climates
Dew-point effectiveness:
ε_dp = (T_db_in - T_db_out) / (T_db_in - T_dp_in) × 100% [%]
Best IEC: ε_dp = 70–90% (Maisotsenko cycle achieves 80–110% using multi-stage)
IEC types:
Plate type: thin plastic/aluminum plates; secondary evaporation on wet side; primary dry side
Tube type: secondary water runs inside tubes; primary air over outside; no moisture transfer
Maisotsenko (M-cycle): unique counterflow approach achieving T_dp approach; can reach T_dp not just T_wb
Two-Stage (Indirect + Direct) System
Stage 1 (indirect): pre-cool air without humidifying (T_db drops, W unchanged)
Stage 2 (direct): further cooling by DEC on pre-cooled, less humid air
Advantage: lower supply temperature than DEC alone while maintaining acceptable humidity
Example: 40°C/20% RH → indirect pre-cool to 30°C/28% → direct evap to T_supply ≈ 22°C
Cooling capacity calculation:
Q_cooling = ṁ_air × c_p_air × (T_in - T_out) + ṁ_air × (W_out - W_in) × h_evap
For sensible-only cooling: Q = ṁ × c_p × ΔT [kW; c_p = 1.006 kJ/(kg·K)]
Data Center Evaporative Cooling (Free Cooling)
Adiabatic cooler: spray water into outdoor air before entering air-cooled chiller/condensers
Reduces T_wb → lower condensing temperature → higher COP
Water savings vs. energy:
Power reduction: 30–60% in summer (desert climates) when adiabatic cooling engaged
ASHRAE A1 data center: return air T ≤ 45°C; supply 15–27°C
Economizer hours:
Hours where T_wb_outdoor < T_supply_required → free cooling available
Hours increase significantly in dry climates
Water consumption (data center):
Water Usage Effectiveness (WUE) = annual water volume / IT energy [L/kWh]
Evaporative cooling: WUE ≈ 2–5 L/kWh; air-cooled (no evap): WUE < 0.5 L/kWh
Media and Equipment
Evaporative media:
Cellulose (paper) pads: lowest cost; most common; ε = 0.85; airflow up to 2 m/s
Rigid plastic media (PVC): higher durability; ε = 0.85–0.95; chlorine-resistant
Fabric pads (dew point cooler): ε_dp = 75–85%
Sump design:
Water recirculation rate: 5–10× evaporation rate (to prevent concentration of dissolved minerals)
Bleed rate: 10–20% of recirculated water → maintain TDS < 1000 ppm
TDS = Total Dissolved Solids; high TDS → scaling on media → reduced effectiveness
Corrosion and Legionella:
Legionella prevention: maintain water T < 20°C or > 60°C; or treat with biocide
ASHRAE 188: standard for Legionella prevention in building water systems
Regular cleaning: media and sump; weekly visual inspection recommended
Cooling Effectiveness vs. Climate
Climates where evaporative cooling is effective:
| Climate | T_wb max | Effective? |
|---|
| Hot desert (Phoenix, Riyadh) | < 22°C | Excellent |
| Hot dry Mediterranean | < 24°C | Good |
| Hot-humid tropical | 27–30°C | Limited; IEC only |
| Temperate | < 20°C in summer | Excellent for night flush |
Hours below T_wb thresholds (annual):
Phoenix: T_wb < 18°C → 4000+ hr/yr; T_wb < 22°C → 7000+ hr/yr
Standards
| Standard | Scope |
|---|
| ASHRAE 55 | Thermal comfort (temperature and humidity limits for occupants) |
| ASHRAE 188 | Legionella risk management |
| ASHRAE 90.1 | Energy standard; evaporative credit for HVAC |
| ANSI/AMCA 330 | Air performance certification for evaporative products |
| ISO 9001 | Cooling system quality management |
Output
Provide: outdoor design conditions (T_db [°C], RH [%], T_wb [°C], T_dp [°C]), cooling type (direct/indirect/two-stage), saturation effectiveness ε [%] or ε_dp [%], supply air T [°C] and RH [%], cooling capacity Q [kW], airflow ṁ_air [kg/s], water consumption rate [kg/hr] and total [L/day], water makeup rate and bleed rate [L/hr], media type and depth [mm], WUE [L/kWh] (if data center), annual free-cooling hours [hr/yr], Legionella risk control (ASHRAE 188 compliance), and applicable standard (ASHRAE 55, ASHRAE 188, ASHRAE 90.1).