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Selecting a Cooling System: Ambient Cooling System | Recirculating Chiller | Liquid-to-Liquid Cooling System | Recirculating Chiller or Liquid-to-Liquid Cooling System | Selecting A Cold Plate Technology | Selecting A Pump | Selecting a Recirculating Chiller | Selecting A Modular Cooling System | Selecting an Liquid-to-Liquid Cooling System | How To Selecting a Heat Exchanger

In cabinet cooling applications, the air is hotter than the liquid. In this case, the ITD is the difference between the hot air entering the heat exchanger and the cold liquid entering the heat exchanger. You may need to calculate the temperature rise using the heat load and the temperature of the cool air entering the cabinet.

Example: Cabinet Cooling application

You are cooling a cabinet containing electronic components that generate 2400 W of heat. The air in the cabinet must not exceed 55°C. What heat exchanger should be selected, and what is the temperature of the cool air entering the electronics cabinet?



Step 1: Application Data
Liquid Type: Water
Required Heat Load (Q): 2,400 W (8,189 BTU/Hr)
Temp. of Incoming Liquid (Tliquid in): 20°C (68°F)
Max.temp of air in cabinet (Tair in): 55°C (131°F) — This is the temperature of the hot air entering the heat exchanger
Rate of Liquid Flow: 2 gpm (7.6 lpm)

Step 2: Calculate the initial temperature difference

Subtract the temperature of the incoming liquid from the temperature of the incoming air as it enters the heat exchanger.

ITD = Tair in – Tliquid in = 55°C – 20°C = 35°C (or 131°F – 68°F = 63°F)

Step 3: Calculate the required performance capability (Q/ITD)

Divide the required heat load (Q) by the ITD found above in step 2.

Heat exchanger air flow graph



Step 4: Select the appropriate heat exchanger model

Refer to the thermal performance graphs for the heat exchangers selected (See performance graphs for copper heat exchangers – 6000 series, copper heat exchangers – OEM Coils, stainless steel heat exchangers – Aspen Series, stainless steel heat exchangers – 4000 Series and oil coolers). Any heat exchanger that exceeds 68.6 W/°C at 2 gpm (using a standard fan) would be acceptable. Using water as the coolant, a copper heat exchanger is recommended. As shown in the following graph, Lytron’s 6310 exceeds the required performance, offering a Q/ITD of approx. 96 W/°C using our Caravel fan.

Liquid and air pressure drop can be determined the same way as in the previous example.

Step 5: Calculating the temperature of the cool air entering the cabinet

Now, to calculate the temperature of the cool air entering the cabinet, use the temperature change graph for air. With a heat load of 2,400 W, and a flow rate of 250 CFM (the flow rate of the standard Caravel fan recommended for use with the 6310) we can see that the temperature change is 17°C. This means that the cool air entering the cabinet will be: 55°C – 17°C = 38°C

Temperature change graph for air

Please Note: These graphs offer a simple graphical way of estimating fluid temperature change if you know your heat load and flow, without having to do calculations. The graphs for water, air, 50/50 ethylene glycol/water and oil allow you to calculate temperature changes for air and liquid for all types of heat exchangers.

Step 6: Calculating the outgoing water temperature

To determine the outgoing temperature of the water we use the ‘Water Flow’ chart to find that the change in temperature is approximately 5°C. Therefore the outgoing water temperature is 20°C + 5°C = 25°C.

Water flow graph

Alternative sizing equation

The general heat transfer equation can be used to calculate the heat load and the fluid temperature change given the fluid flow rate and specific heat.

Equation

dot_over_m.gifcan be calculated for water and air using the following equations:

Equation

The temperature change graphs plot the above equation for common heat transfer media (air, water, oil, and a 50% EGW mixture) providing a simple way to look up ΔT if you know your heat load and fluid flow rate.

Releated References:
  • Heat Exchanger
  • U bend Stainless Steel Tube for Heat Exchanger
  • Heat Exchanger Tube
  • Specification/Standards for Heat Exchanger Tubes
  • Finned Tube and Pipe Heat Exchangers
  • Shell Tube and Pipe Heat Exchangers
  • Select Materials for Heat Exchanger Tubes with Substantial Pressure difference
  • The difference between Stainless Steel Tubing and Copper Tubing in Shell and Tube Heat Exchanger
  • Difference in Counter and Parallel Flow Heat Exchanger
  • Aluminum Corrosion Resistance for Cold Plates and Plate-Fin Heat Exchangers
  • Flow arrangement
  • Heat exchangers - Tubes and Pipes Standards
  • Selecting a Heat Exchanger Cooling Liquid
  • Selecting a Heat Exchanger Cooling Air
  • Selecting A Cold Plate Technology
  • Selecting a Cooling System: Ambient Cooling System | Recirculating Chiller | Liquid-to-Liquid Cooling System | Recirculating Chiller or Liquid-to-Liquid Cooling System
  • Selecting A Cold Plate Technology
  • Selecting A Pump
  • Selecting a Recirculating Chiller
  • Selecting A Modular Cooling System
  • Selecting an Liquid-to-Liquid Cooling System
  • How To Selecting a Heat Exchanger
  • How to Boost the Efficiency of Heat Exchanger
  • Comparison of Heat Exchanger Types
  • Parallel and Counter Flow Design
  • Direct contact heat exchanger

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