Air (use the IG model) enters the compressor of an ideal air standard Brayton cycle at 100 kPa, 290 K and a mass flow ra
Posted: Tue Apr 26, 2022 3:54 pm
a)Perform an exergy inventory of the exergy flow rate from the
reservoir.
Express your answer to four significant figures and include the
appropriate units.
b)Determine the thermal efficiency.
Express your answer to four significant figures.(%)
c)Determine the exergetic efficiency.
Express your answer to four significant figures.(%)
d)Calculate the rate of exergy destruction in the
regenerator.
Express your answer to three significant figures and include the
appropriate units.
Air (use the IG model) enters the compressor of an ideal air standard Brayton cycle at 100 kPa, 290 K and a mass flow rate (m) of 3 kg/s. The compressor pressure ratio is 10. The turbine inlet temperature is 1500 K. A regenerator with an effectiveness of 70% is incorporated in the cycle. The heat addition can be assumed to take place from a reservoir at 1800 K. (Figure 1) Figure 1 of 1 Regenerator 6 Combustor TOT Compressor Turbine
reservoir.
Express your answer to four significant figures and include the
appropriate units.
b)Determine the thermal efficiency.
Express your answer to four significant figures.(%)
c)Determine the exergetic efficiency.
Express your answer to four significant figures.(%)
d)Calculate the rate of exergy destruction in the
regenerator.
Express your answer to three significant figures and include the
appropriate units.
Air (use the IG model) enters the compressor of an ideal air standard Brayton cycle at 100 kPa, 290 K and a mass flow rate (m) of 3 kg/s. The compressor pressure ratio is 10. The turbine inlet temperature is 1500 K. A regenerator with an effectiveness of 70% is incorporated in the cycle. The heat addition can be assumed to take place from a reservoir at 1800 K. (Figure 1) Figure 1 of 1 Regenerator 6 Combustor TOT Compressor Turbine