Evaporative Cooling System’s Air Requirement
Subject
Building Services
,Climatology
,Academic Year
2'nd Year
,3'rd Year
,Complexity Level
Intermediate
,Content tags
Evaporative Cooling
,Psychrometry
,Space Cooling
,Activity Type
Numerical Exercise
,Activity duration
15 mins
,Objective
To determine volume flow rate of air required per TR of cooling in an evaporative cooling system.
Outcome
Students will realize that unlike water requirement, air requirement in an evaporative cooler per TR varies. It depends on the ambient and desired air conditions.
Requirements
Psychrometric Chart
Prerequisites
- Conceptual knowledge of psychrometry.
- Understanding of psychrometric chart.
Given Data:
Design Conditions (Peak Summer)
- Ambient : DB = 38°C, RH = 30%
- Effectiveness of Evaporative Cooler : 90%
- Density of air : 1.12 kg/m3
- Mass flow rate of water (mW) : 5.6 kg/hr/TR (refer last activity)
Conversion Factors
- 1 kW = 1 kJ/s
- 1 hr = 3,600 s
- 1 TR = 3.517 kW of cooling
- 1 m3 = 35.32 ft3
Procedure
Step 1: Estimate the Desired Air Condition from effectiveness of the Evaporative Cooling System.
Step 2: Estimate Specific Humidity Ratios (⍵) of Ambient and Desired Air Conditions (g H2O/kg air) and their difference (∆⍵).
Step 3: Estimate the mass flow rate of air (kg/hr).
Step 4: Estimate the required volumetric air flow rate (m3/hr), convert into cfm.
Calculations:
Step 1: Desired condition: DB = 26 °C, RH = 87%
Step 2: Humidity ratio of
- Ambient condition (⍵a) = 13 g H2Okg air
- Desired condition (⍵d) = 18 g H2Okg air
Δw = ⍵d – ⍵a = 5 g H2Okg air
Step 3: Flow rate of air per TR (kghr-TR) =ma (kg H2OTR) 1000 (g H2Okg H2O)Δ⍵ (g H2Okg air)
= 5.6 10005
= 1,120 kghr-TR
Step 4: Volumetric air flow rate per TR (cfmTR) = flow rate of air (kghr-TR) 35.32 (ft3m3) 60 (minhr) density of air (kgm3)
= 1,120 x 35.321.12 x 60
= 588.6 cfm/TR
Image:
Humidity Ratios for different air conditions
References
None