Tunalover
Mechanical
- Mar 28, 2002
- 1,179
Folks-
I soon have to deal with a design where we'll try to use a liquid-cooled heat sink to cool another design having a lower heat load using air at a higher mass flow rate.
If a detailed analysis was done on the liquid-cooled heat exchanger with heat load Q1 using a liquid having thermal diffusivity alpha1, mass flowrate Vdot1, drawing liquid in at Tin1, and exhausting fluid at Tout1, is it approximately true that:
Tout2-Tin2
=(Tout1-Tin1)[(Q2)(alpha1)(Vdot1)]/[(Q1)(alpha1)(Vdot1)]
where
Tout2= the outlet (exhaust) air temperature
Q2= the heat load with the air-cooled setup
alpha2 = the thermal diffusivity of air,
Vdot2 = the mass flowrate of the the air, and
Tin2 = the inlet temperature of the air
????
Or am I oversimplifying things if radiation and natural convection are ignored?
Tunalover
I soon have to deal with a design where we'll try to use a liquid-cooled heat sink to cool another design having a lower heat load using air at a higher mass flow rate.
If a detailed analysis was done on the liquid-cooled heat exchanger with heat load Q1 using a liquid having thermal diffusivity alpha1, mass flowrate Vdot1, drawing liquid in at Tin1, and exhausting fluid at Tout1, is it approximately true that:
Tout2-Tin2
=(Tout1-Tin1)[(Q2)(alpha1)(Vdot1)]/[(Q1)(alpha1)(Vdot1)]
where
Tout2= the outlet (exhaust) air temperature
Q2= the heat load with the air-cooled setup
alpha2 = the thermal diffusivity of air,
Vdot2 = the mass flowrate of the the air, and
Tin2 = the inlet temperature of the air
????
Or am I oversimplifying things if radiation and natural convection are ignored?
Tunalover