Fair Conditioning Cooling Load Estimation of a Space – Fair Conditioning

Cooling Load Estimation of a Space

Subject

Building Services

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Climatology

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Academic Year

2'nd Year

,

3'rd Year

,
Complexity Level

Advanced

,
Content tags

Air Conditioning

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Psychrometry

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Space Cooling

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Activity Type

Numerical Exercise

,
Activity duration

15 mins

,
Objective

To estimate the AC Tonnage (TR) required for combating the typical fresh-air cooling load in a bedroom.

Outcome

Students will understand the procedure to be followed in calculating heat load requirements of a built space.

Requirements

Psychrometric chart

Prerequisites
  1. Conceptual knowledge of psychrometry
  2. Understanding of psychrometric chart

Given Data:

Design Conditions (peak summer)

  1. Ambient : DB = 40°C, RH = 60%
  2. Desired : DB = 24°C, RH = 50%
  3. Density of air : 1.12 kg/m3
  4. 4 air changes per hour
  5. 120 sq. ft. room, 10 ft. ceiling height

Conversion Factors:

  1. 1 kW = 1 kJ/s
  2. 1 hr = 3,600 s
  3. 1 m3 = 35.32 ft3

1 TR = 3.517 kW of cooling

Procedure

Step 1: Estimate Enthalpy (H) of ambient condition and desired air conditions (kJ/kg) and find the difference (∆H).

Step 2: Estimate required volumetric air flow rate (m3/hr).

Step 3: Convert to mass flow rate (kg/hr).

Step 4: Estimate cooling required (kJ/s).

Step 5: Convert kJ/s to TR.

Calculations:

Step 1: Enthalpy of

  1. Ambient condition (Ha) = 114kJkg
  2. Desired condition (Hd) = 48.5kJkg

ΔH= Ha – Hd = 114-48.5 = 65.5kJkg 

Step 2: Volumetric air flow rate (va) (m3hr) = air changes per hour (1hr) volume of the room (ft3)35.32 (ft3m3)

= 4 120 1035.32  

= 135.84 m3hr

Step 3: Mass flow rate (ma) (kghr) = va (m3hr) x density of air (kgm3)

= 135.8 x 1.12

= 152.1kghr

Step 4: Cooling required (kJs) =ma (kghr) ΔH (kJkg)3600 (shr) 

=152.14 65.53600 

= 2.768kJs

Step 5: Cooling required (TR) =cooling required (kJs)3.517 (kJs-TR) 

= 2.7683.517 

≈ 0.8 TR 

Image:

Enthalpies of air at different conditions

References

None

Source of Idea

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