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Problem I: Not applicable for 2017 Problem II: In an R-134a vapor-compression home heat pump, R-134A enters the compressor (75% isentropic efficiency) as a saturated vapor at 200 kPa and leaves at 800 kPa. The refrigerant goes through a constant pressure condenser and leaves as a saturated liquid. The refrigerant then goes through an adiabatic expansion valve enters the evaporator as a liquid-vapor mixture. The mass flow rate of refrigerant is 0.1 kg/s. and Cod A. Write the equation for compressor isentropic efficiency. (5 pts) B. Fill in the table for each state (10 pts) Pressure TemperatureEnthalpy Entropy State Fluid type (kPa) 2s 2a C. Draw the T-s diagram for this cycle. (10 pts) D. Calculate the rate of work into the compressor W. (5 pts) E. Calculate the rate of heat supplied to the home by the heat pump Qn-(5 pts) F. The heat is supplied to the house by blowing outside air over the condenser. What air volume flow rate can the heat pump warm from 5 C and-10%-reletive humidity to 25 C? (10 pts)
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