โ„๏ธ Cooling Coil Psychrometrics

Calculate cooling coil sensible & latent loads, Apparatus Dew Point (ADP), bypass factor (BF), leaving air condition, and condensate drainage rates.

โšก Fortran 90 Engine Double Precision (IEEE 754) โœ“ ISO / ASME Validated
Cooling Coil Psychrometrics Hvac
๐Ÿ“Š Solver Telemetry โ— ACTIVE
๐Ÿ‘๏ธ Views 34
โšก Solves 27
๐Ÿ’พ Downloads 506 ๐Ÿ“ฆ Fortran Code 4.4 KB
๐Ÿ“… Released Jun 2026
โฑ๏ธ Latency < 1 ms
โšก TOOLS & REPORTS:
๐Ÿ’พ Download Fortran 90

โ„๏ธ Psychrometric Cooling & Dehumidification Coil Process Line

Real-time visual psychrometric state points: Entering (1) โ†’ Leaving (2) โ†’ Apparatus Dew Point (ADP)

๐Ÿ“ Configuration & Presets

๐Ÿข Office Comfort (28ยฐC / 55%) ๐ŸŒด Tropical Monsoon (34ยฐC / 80%) ๐Ÿ–ฅ๏ธ Data Center (SHR > 0.95) ๐Ÿฅ Hospital Operating Suite
๐ŸŒก๏ธ Entering Air Condition (State 1)
1 CFM โ‰ˆ 1.699 mยณ/h
4-row: ~0.15, 6-row: ~0.10, 8-row: ~0.05
โ„๏ธ Coil Apparatus Dew Point & Water Loop
Effective coil surface temperature
Standard: 6.0 ยฐC (e.g. 6ยฐC Supply / 12ยฐC Return)
Psychrometric Formulations:
โ€ข Leaving DB: Tdb2 = ADP + BF ยท (Tdb1 โˆ’ ADP)
โ€ข Total Capacity: Qtotal = mฬ‡a ยท (hโ‚ โˆ’ hโ‚‚) [kW]
โ€ข Sensible Ratio: SHR = Qsens / Qtotal
โ€ข Condensate Rate: mฬ‡w = mฬ‡a ยท (wโ‚ โˆ’ wโ‚‚) ร— 3600 [L/h]

๐Ÿ“Š Coil Performance Results

๐Ÿ“Š Output Summary
๐Ÿ’พ Fortran Source

Total Cooling Coil Load
Qtotal = 118.41 kW (33.7 TR)
Leaving Air State: 8.3 ยฐC DB @ 100.0 % RH
SHR = 0.333
Sensible Capacity (Qs) 39.46 kW 33.3 % of Total
Latent Dehumidification (Ql) 78.96 kW 66.7 % Latent
Condensate Extraction Rate 110.11 L/h ฮ”w = 20.00 g/kg
Chilled Water Flow (ฮ”T=6ยฐC) 17.01 mยณ/h 74.9 GPM

๐Ÿ“ˆ Total Cooling Capacity (kW) vs Air Flow Q

๐Ÿ“‰ Condensate Extraction Rate (L/h) vs ADP

=================================================================
 THERMOFLUIDCALC โ€” COOLING COIL PSYCHROMETRIC REPORT
=================================================================
Case Title                 : Tropical Monsoon Deep Latent Dehumidification Coil
Entering Air State (1)     : 34.0 ยฐC DB, 80.0 % RH (h=104.12 kJ/kg, w=27.27 g/kg)
Apparatus Dew Point (ADP)  : 7.00 ยฐC
Coil Bypass Factor (BF)    : 0.050 (Contact Factor = 0.950)
Air Volume Flow Rate       : 5,000.0 m3/h (2,943 CFM)
-----------------------------------------------------------------
Leaving Air State (2)      : 8.3 ยฐC DB, 100.0 % RH (h=26.68 kJ/kg, w=7.26 g/kg)
TOTAL COOLING CAPACITY     : 118.41 kW (33.67 TR, 404042 BTU/h)
Sensible Capacity (Qs)     : 39.46 kW (33.3 %)
Latent Capacity (Ql)       : 78.96 kW (66.7 %)
Sensible Heat Ratio (SHR)  : 0.3332
Condensate Moisture Rate   : 110.11 L/h (110.11 kg/h)
Chilled Water Flow (dT=6ยฐC): 17.01 m3/h (74.9 GPM)
=================================================================

๐Ÿ“˜ Calculation Methodology & ASHRAE Standards

Apparatus Dew Point & Bypass Factor

The portion of air that passes untouched through fin spaces is represented by the Bypass Factor $BF$. The condition curve connects state 1 directly toward $ADP$:

Tdb2 = ADP + BF ยท (Tdb1 โˆ’ ADP)

Sensible Heat Ratio & Dehumidification

When the coil surface temperature $ADP < T_{dew1}$, simultaneous cooling and moisture condensation occur. Deeper 6โ€“8 row coils achieve $BF \le 0.08$ for deep moisture removal.

Key Engineering Assumptions

  • Standard atmospheric pressure $P = 101.325\,\text{kPa}$.
  • Ideal gas mixture thermodynamics for dry air and water vapor.
  • Chilled water specific heat $c_p = 4.186\,\text{kJ/(kgยทK)}$.