A commercial airliner is flying at an altitude where the temperature and pressure of the air are -50°C and 26.5 kPa. An engine-driven compressor will take this air at T₁ = -50°C, P₁ = 26.5 kPa and compress it to P₂ = P₂ = 85.0 kPa to pressurize the cabin. The air will be very hot when it exits the compressor, so a heat exchanger will be used to cool the air to T, = 20°C before it enters the cabin. Cold air at T₁ = -50°C will be used in the heat exchanger to cool the cabin air, and this air will exit the heat exchanger at T = 20°C (this air will be used to heat the cargo bay). The mass flow rate of the air delivered to the cabin is 0.80 kg/s and the compressor efficiency is 75%. Model the air as an ideal gas having variable specific heat, using values from Cengel's tables posted on Canvas. a) Find the actual temperature of the air exiting the compressor and the power input to the compressor (answers: 67.9°C and 94.7 kW). b) Find the rate of heat transfer in the heat exchanger and the mass flow rate of the cold air being used to cool the cabin air (answers: 38.5 kW and 0.549 kg/s). W COMPRESSOR P₂ = 85.0 kPa T₁ = -50°C P₁ = 26.5 kPa T, = 20°C 5 Compressor 1 2 wwwwwww wwwwwww Heat Exchanger T₁ = -50°C 4 + Cooling Air → Cabin Air 3 T, = 20°C P3 = 85.0 kPa

Elements Of Electromagnetics
7th Edition
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Publisher:Sadiku, Matthew N. O.
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A commercial airliner is flying at an altitude where the temperature and pressure of
the air are -50°C and 26.5 kPa. An engine-driven compressor will take this air at
T₁ = -50°C, P₁ = 26.5 kPa and compress it to P₂ = P₂ = 85.0 kPa to pressurize the
cabin. The air will be very hot when it exits the compressor, so a heat exchanger will be
used to cool the air to T, = 20°C before it enters the cabin. Cold air at T₁ = -50°C will
be used in the heat exchanger to cool the cabin air, and this air will exit the heat
exchanger at T = 20°C (this air will be used to heat the cargo bay). The mass flow rate
of the air delivered to the cabin is 0.80 kg/s and the compressor efficiency is 75%.
Model the air as an ideal gas having variable specific heat, using values from Cengel's
tables posted on Canvas.
a) Find the actual temperature of the air exiting the compressor and the power input
to the compressor (answers: 67.9°C and 94.7 kW).
b) Find the rate of heat transfer in the heat exchanger and the mass flow rate of the
cold air being used to cool the cabin air (answers: 38.5 kW and 0.549 kg/s).
W COMPRESSOR
P₂ = 85.0 kPa -2
T, = 20°C
5
Compressor
T₁ = -50°C
P₁ = 26.5 kPa
1
wwwwwwww ←
Heat
Exchanger
T₁ = -50°C
4
Cooling Air
Cabin Air
3
T, = 20°C
P3 = 85.0 kPa
Transcribed Image Text:A commercial airliner is flying at an altitude where the temperature and pressure of the air are -50°C and 26.5 kPa. An engine-driven compressor will take this air at T₁ = -50°C, P₁ = 26.5 kPa and compress it to P₂ = P₂ = 85.0 kPa to pressurize the cabin. The air will be very hot when it exits the compressor, so a heat exchanger will be used to cool the air to T, = 20°C before it enters the cabin. Cold air at T₁ = -50°C will be used in the heat exchanger to cool the cabin air, and this air will exit the heat exchanger at T = 20°C (this air will be used to heat the cargo bay). The mass flow rate of the air delivered to the cabin is 0.80 kg/s and the compressor efficiency is 75%. Model the air as an ideal gas having variable specific heat, using values from Cengel's tables posted on Canvas. a) Find the actual temperature of the air exiting the compressor and the power input to the compressor (answers: 67.9°C and 94.7 kW). b) Find the rate of heat transfer in the heat exchanger and the mass flow rate of the cold air being used to cool the cabin air (answers: 38.5 kW and 0.549 kg/s). W COMPRESSOR P₂ = 85.0 kPa -2 T, = 20°C 5 Compressor T₁ = -50°C P₁ = 26.5 kPa 1 wwwwwwww ← Heat Exchanger T₁ = -50°C 4 Cooling Air Cabin Air 3 T, = 20°C P3 = 85.0 kPa
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