๐ŸŒŠ Cooling Tower Merkel Integral (KaV/L)

Calculate cooling tower mass transfer demand (Merkel number KaV/L) via Chebyshev 4-point quadrature, thermal effectiveness, range, approach, and evaporation loss.

โšก Fortran 90 Engine Double Precision (IEEE 754) โœ“ ISO / ASME Validated
Cooling Tower Merkel Integral (KaV/L) Mass Transfer
๐Ÿ“Š Solver Telemetry โ— ACTIVE
๐Ÿ‘๏ธ Views 31
โšก Solves 28
๐Ÿ’พ Downloads 497 ๐Ÿ“ฆ Fortran Code 6.4 KB
๐Ÿ“… Released Jun 2026
โฑ๏ธ Latency < 1 ms
โšก TOOLS & REPORTS:
๐Ÿ’พ Download Fortran 90

๐ŸŒŠ Induced Draft Counter-Flow Cooling Tower & Film Packing Simulation

Real-time visual simulation of hot water spray, evaporative mass transfer & upward air drafting

๐Ÿ“ Configuration & Presets

๐Ÿญ Industrial (37ยฐC โ†’ 29ยฐC) โšก Power Plant (3500 mยณ/h) ๐Ÿข HVAC Chiller Loop โ˜€๏ธ Desert Arid Climate
๐ŸŒก๏ธ Water Temperatures & Flow
Standard range: 0.8 to 1.8
๐ŸŒค๏ธ Ambient Psychrometric Air State
Theoretical cooling limit
CTI Merkel Formulations:
โ€ข Merkel Integral: KaV / L = โˆซ [ cw dTw / (hsat โˆ’ ha) ]
โ€ข Range = Tw,in โˆ’ Tw,out | Approach = Tw,out โˆ’ Twb
โ€ข Thermal Effectiveness: ฮท = Range / (Tw,in โˆ’ Twb) ร— 100%
โ€ข Evaporation Loss: Qevap โ‰ˆ 0.0018 ยท L ยท Range [mยณ/h]

๐Ÿ“Š Merkel Analysis Results

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

Tower Characteristic / Merkel Number
KaV / L = 1.237
Thermal Effectiveness: 62.5 % (Range = 10.0 ยฐC, Approach = 6.0 ยฐC)
L/G = 1.40
Evaporation Water Loss 63.00 mยณ/h 1.80 % of circulation
Fan Air Flow Demand 2,114,407 mยณ/h 1,244,501 CFM
Thermal Cooling Heat Rejected 40,616 kW 11,548 Tons
Approach to Wet Bulb 6.0 ยฐC Twb = 26.0 ยฐC

๐Ÿ“ˆ Merkel Number (KaV/L) vs Liquid-to-Gas Ratio (L/G)

๐Ÿ“‰ Thermal Effectiveness (%) vs Approach to Wet Bulb (ยฐC)

=================================================================
 THERMOFLUIDCALC โ€” COOLING TOWER MERKEL INTEGRAL REPORT
=================================================================
Case Title                 : Thermal Power Plant Steam Condenser Cooling Tower
Water Flow Rate (L)        : 3500.0 m3/h (15410.5 GPM)
Water Temperatures In/Out  : 42.0 ยฐC / 32.0 ยฐC (Range = 10.0 ยฐC)
Ambient Air Dry/Wet Bulb   : 35.0 ยฐC / 26.0 ยฐC (Approach = 6.0 ยฐC)
Liquid-to-Gas Ratio (L/G)  : 1.400
-----------------------------------------------------------------
MERKEL NUMBER (KaV / L)    : 1.2369 (Chebyshev 4-pt Quadrature)
Thermal Effectiveness      : 62.50 %
Heat Rejected              : 40,615.8 kW (11,548 TR)
Evaporative Water Loss     : 63.00 m3/h (277.4 GPM)
Required Airflow           : 2,114,407 m3/h (1,244,501 CFM)
=================================================================

๐Ÿ“˜ Calculation Methodology & CTI Standards

Merkel Enthalpy Driving Force

The Merkel theory unifies sensible and latent heat transfer into a single potential: the enthalpy difference between saturated air at the water interface and bulk moist air:

KaV/L = โˆซ [ cw dTw / (hsat โˆ’ ha) ]

Chebyshev 4-Point Quadrature

CTI Bulletin P-130 specifies evaluation at 4 standard points across the cooling range ($10\%, 40\%, 60\%, 90\%$) for high numerical accuracy without manual graphical integration.

Key Engineering Assumptions

  • Lewis factor $Le_f = 1.0$ (equal mass and heat transfer boundary layers).
  • Negligible reduction in water flow rate along the tower fill.
  • Saturated air at water temperature interface.