Concept explainers
(a)
The exit temperature of the air.
(a)
Explanation of Solution
Given:
The inlet pressure
The inlet temperature
The mass flow rate
The heat transfer rate
The inlet temperature of regenerator
The exit temperature of regenerator
The inlet pressure of regenerator
The exit pressure of regenerator
Consider the system is in steady state. Hence, the inlet and exit mass flow rates are equal.
The mass flow rate of air
The mass flow rate of exhaust gas
Write the energy rate balance equation for one inlet and one outlet system.
Here, the rate of heat transfer is
The system is at steady state. Hence, the rate of change in net energy of the system becomes zero.
Neglect the work transfer, potential and kinetic energies. The heat transfer occurs from the exhaust gas to the air.
Consider the air inlet and outlet alone.
The Equations (I) reduced as follows for air.
Rearrange the Equation (II) to obtain exit enthalpy
For air:
At inlet:
Refer Table A-17, “Ideal-gas properties of air”.
Obtain the inlet enthalpy
Calculation:
Substitute
Equation (III)
Refer Table A-17, “Ideal-gas properties of air”.
Obtain the exit temperature of air
Write the formula of interpolation method of two variables.
Show the temperature and enthalpy values from the Table A-17 as in below table.
S.No. | x | y |
Enthalpy | Temperature | |
1 | 756.44 | 740 |
2 | 758.24 | ? |
3 | 767.29 | 750 |
Substitute
Thus, the exit temperature of the air is
(b)
The mass flow rate of exhaust gas.
(b)
Explanation of Solution
Consider the exhaust gas inlet and outlet alone.
The heat transfer occurs from the exhaust gas to the air. The heat losses from the exhaust gas.
The Equations (I) reduced as follows for exhaust gas.
Heat loss by the exhaust gas is equal to the heat gained by the air.
For exhaust gas:
Consider the exhaust gas as air and refer the property tables of air.
At inlet:
Refer Table A-17, “Ideal-gas properties of air”.
Obtain the inlet enthalpy
Obtain the exit enthalpy
Calculation:
Substitute
Equation (V).
Thus, the mass flow rate of exhaust gas is
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Chapter 6 Solutions
Fundamentals of Thermal-Fluid Sciences
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