EBK THERMODYNAMICS: AN ENGINEERING APPR
EBK THERMODYNAMICS: AN ENGINEERING APPR
8th Edition
ISBN: 8220100257056
Author: CENGEL
Publisher: YUZU
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Chapter 9.12, Problem 142P
To determine

The exergy destruction associated with each of the processes of the Brayton cycle.

Expert Solution & Answer
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Answer to Problem 142P

The exergy destruction associated with process 1-2 of the given Brayton cycle is 28.08kJ/kg.

The exergy destruction associated with process 2-3 of the given Brayton cycle is 100.3kJ/kg.

The exergy destruction associated with process 3-4 of the given Brayton cycle is 32.86kJ/kg.

The exergy destruction associated with process 4-1 of the given Brayton cycle is 197.93kJ/kg.

Explanation of Solution

Show the simple Brayton cycle, and with air as the working fluid on Ts diagram.

EBK THERMODYNAMICS: AN ENGINEERING APPR, Chapter 9.12, Problem 142P

For the given simple Brayton cycle with air as the working fluid, let Ti, Pi, hi and Pri be the temperature, pressure, specific enthalpy and relative pressure at ith state respectively.

Write the expression of pressure ratio relation for the process 1-2.

Pr2=P2P1Pr1 (I)

Write the relation of pressure ratio and pressure for the process 3-4.

Pr4=P4P3Pr3 (II)

Write the expression of efficiency of the compressor (ηC).

ηC=h2sh1h2h1 (III)

Write the expression of efficiency of the turbine (ηT).

ηT=h3h4h3h4s (IV)

Write the expression of heat input to the Brayton cycle (qin).

qin=(h3h2) (V)

Write the expression of heat rejected by the Brayton cycle (qout).

qout=(h4h1) (VI)

Write the expression of exergy destruction associated with the process 1-2 of the given Brayton cycle (xdestroyed,12).

xdestroyed,12=T0(s2s1)

xdestroyed,12=T0(s2s1RlnP2P1) (VII)

Here, temperature of the surroundings is T0, gas constant of air is R, entropy of air at state 2 as a function of temperature alone is s2, and entropy of air at state 1 as a function of temperature alone is s1.

Write the expression of exergy destruction associated with the process 2-3 of the given Brayton cycle (xdestroyed,23).

xdestroyed,23=T0(s3s2+qinTH)

xdestroyed,23=T0(s3s2RlnP3P2+qinTH) (VIII)

Here, temperature of the heat source is TH, entropy of air at state 2 as a function of temperature alone is s2, and entropy of air at state 3 as a function of temperature alone is s3.

Write the expression of exergy destruction associated with the process 3-4 of the given Brayton cycle (xdestroyed,34).

xdestroyed,34=T0(s4s3)

xdestroyed,34=T0(s4s3RlnP4P3) (IX)

Here, entropy of air at state 3 as a function of temperature is s3, and entropy of air at state 4 as a function of temperature is s4.

Write the expression of exergy destruction associated with the process 4-1 of the given Brayton cycle (xdestroyed,41).

xdestroyed,41=T0(s1s4+qoutTL)

xdestroyed,41=T0(s1s4RlnP1P4+qoutTL) (X)

Here, temperature of the sink is TL, entropy of air at state 1 as a function of temperature alone is s1, and entropy of air at state 4 as a function of temperature alone is s4.

Conclusion:

Refer Table A-17E given in the textbook to find the properties of air at 295 K (T1), which gives 295.17kJ/kg for h1, 1.3068 for Pr1 and 1.68515kJ/kgK for s1.

Substitute 10 for P2P1, and 1.3068 for Pr1 in Equation (I).

Pr2=(10)(1.3068)=13.07

Refer Table A-17E given in the textbook to find the properties of air at 13.07 (Pr1), which gives 570.26kJ/kg for h2s, and 564.9 K for T2s.

Refer Table A-17E given in the textbook to find the properties of air at 1,240 K (T3), which gives 1,324.93kJ/kg for h3, 272.3 for Pr3 and 3.21751kJ/kgK for s3.

Substitute 110 for P4P3, and 272.3 for Pr3 in Equation (II).

Pr4=(110)(272.3)=27.23

Refer Table A-17 given in the textbook to find the properties of air at 27.23 (Pr4), which gives 702.07kJ/kg for h4s, and 689.6 K for T4s.

Rearrange Equation (III) and substitute 295.17kJ/kg for h1, 570.26kJ/kg for h2s, and 0.83 for ηC.

h2=h1+h2sh1ηC=295.17kJ/kg+(570.26295.17)kJ/kg0.83=626.60kJ/kg

Refer Table A-17E given in the textbook to find the properties of air at 626.60kJ/kg (h2), which gives 2.44117kJ/kgK for s2.

Rearrange Equation (IV) and substitute 1,324.93kJ/kg for h3, 702.07kJ/kg for h4s, and 0.87 for ηT.

h4=h3ηT(h3h4s)=1,324.93kJ/kg+(0.87)(1,324.93702.07)kJ/kg=783.04kJ/kg

Refer Table A-17 given in the textbook, to find the properties of air at 783.04kJ/kg (h4), which gives 764.4 K for T4 and 2.66807kJ/kgK for s4.

Substitute 1,324.93kJ/kg for h3, and 626.60kJ/kg for h2 in Equation (V).

qin=(1,324.93626.60)kJ/kg=698.3kJ/kg

Substitute 783.04kJ/kg for h4, and 295.17kJ/kg for h1 in Equation (VI).

qout=(783.04295.17)kJ/kg=487.9kJ/kg

Substitute 295 K for T0, 1.68515kJ/kgK for s1, 2.44117kJ/kgK for s2, 0.287kJ/kgK for R, and 10 for P2P1 in Equation (VII).

xdestroyed,12=(295K)[(2.441171.68515)kJ/kgK(0.287kJ/kgK)ln(10)]=28.08kJ/kg

Thus, the exergy destruction associated with process 1-2 of the given Brayton cycle is 28.08kJ/kg.

Substitute 295 K for T0, 3.21751kJ/kgK for s3, 2.44117kJ/kgK for s2, 0.287kJ/kgK for R, 1,600 K for TH, and 698.3kJ/kg for qin in Equation (VIII). For the process 2-3, pressure remains constant, hence substitute 0 for lnP3P2.

xdestroyed,23=(295K)[(3.217512.44117)kJ/kgK(0.287kJ/kgK)(0)698.3kJ/kg1,600K]=100.3kJ/kg

Thus, the exergy destruction associated with process 2-3 of the given Brayton cycle is 100.3kJ/kg.

Substitute 295 K for T0, 3.21751kJ/kgK for s3, 2.66807kJ/kgK for s4, 0.287kJ/kgK for R, and 110 for P4P3 in Equation (IX).

xdestroyed,34=(295K)[(2.668073.21751)kJ/kgK(0.287kJ/kgK)ln(110)]=32.86kJ/kg

Thus, the exergy destruction associated with process 3-4 of the given Brayton cycle is 32.86kJ/kg.

Substitute 295 K for T0, 1.68515kJ/kgK for s1, 2.66807kJ/kgK for s4, 0.287kJ/kgK for R, 295 K for TL, and 487.9kJ/kg for qout in Equation (X). For the process 4-1, pressure remains constant, hence substitute 0 for lnP1P4.

xdestroyed,41=(295K)[(1.685152.66807)kJ/kgK(0.287kJ/kgK)(0)+487.9kJ/kg295K]=197.93kJ/kg

Thus, the exergy destruction associated with process 4-1 of the given Brayton cycle is 197.93kJ/kg.

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Chapter 9 Solutions

EBK THERMODYNAMICS: AN ENGINEERING APPR

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