EBK THERMODYNAMICS: AN ENGINEERING APPR
EBK THERMODYNAMICS: AN ENGINEERING APPR
9th Edition
ISBN: 8220106796979
Author: CENGEL
Publisher: YUZU
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Textbook Question
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Chapter 8.8, Problem 33P

A well-insulated rigid tank contains 6 lbm of a saturated liquid–vapor mixture of water at 35 psia. Initially, three-quarters of the mass is in the liquid phase. An electric resistance heater placed in the tank is turned on and kept on until all the liquid in the tank is vaporized. Assuming the surroundings to be at 75°F and 14.7 psia, determine (a) the exergy destruction and (b) the second-law efficiency for this process.

(a)

Expert Solution
Check Mark
To determine

The exergy destruction.

Answer to Problem 33P

The exergy destruction is 2766Btu.

Explanation of Solution

Express the entropy balance for the two constant pressure devices.

SinSout+Sgen=ΔSsystemSinSout+Sgen=m(s2s1) (I)

Here, net entropy transfer by heat and mass is SinSout, entropy generation is Sgen, change in entropy is ΔSsystem, mass is m and initial and final specific entropy is s1ands2.

Substitute 0 for SinSout in Equation (I)

0+Sgen=m(s2s1)Sgen=m(s2s1) (II)

Express the exergy destruction.

Xdestroyed=T0Sgen (III)

Here, surrounding temperature is T0.

Here, final specific volume is v2 and specific volume at saturated liquid and vapor is vfandvg respectively.

Express initial specific volume.

v1=vf+x1(vgvf) (IV)

Here, initial quality is x1, specific volume at saturated vapor and liquid is vgandvf respectively.

Express initial specific internal energy.

u1=uf+x1ufg (V)

Here, specific internal energy at saturated liquid and evaporation is ufandufg respectively.

Express initial specific entropy.

s1=sf+x1sfg (VI)

Here, specific entropy at saturated liquid and evaporation is sfandsfg respectively.

Conclusion:

Express initial quality.

x1=134=10.75=0.25

Refer Table A-5E, “saturated water-pressure table” and write the properties corresponding to initial pressure (P1) of 35psia and initial quality of 0.25.

vf=0.01708ft3/lbmvg=11.901ft3/lbmuf=227.92Btu/lbmufg=862.19Btu/lbm

sf=0.38093Btu/lbmRsfg=1.30632Btu/lbmR

Substitute 0.01708ft3/lbm for vf, 11.901ft3/lbm for vg and 0.25 for x1 in Equation (IV).

v1=(0.01708ft3/lbm)+0.25[(11.9010.01708)ft3/lbm]=2.9880ft3/lbm

Substitute 0.25 for x1, 227.92Btu/lbm for uf and 862.19Btu/lbm for ufg in Equation (V).

u1=227.92Btu/lbm+(0.25)(862.19Btu/lbm)=443.47Btu/lbm

Substitute 0.25 for x1, 0.38093Btu/lbmR for sf and 1.30632Btu/lbmR for sfg in Equation (VI).

s1=0.38093Btu/lbmR+(0.25)(1.30632Btu/lbmR)=0.70751Btu/lbmR

As the specific volumes are constant, take initial and final specific volume as equal.

v1=v2=2.9880ft3/lbm

Here, specific final volume is v2.

Refer Table A-5E, “saturated water-pressure table”, obtain the below properties at specific volume at saturated vapor of 2.9880ft3/lbm using interpolation method of two variables.

Write the formula of interpolation method of two variables.

y2=(x2x1)(y3y1)(x3x1)+y1 (VII)

Here, the variables denote by x and y are specific volume at saturated vapor and specific internal energy at saturated vapor respectively.

Show final specific internal energy at specific volume of 2.9880ft3/lbm as in Table (1).

vg(ft3/lbm)u2(Btu/lbm)
Saturated vapor, ug
3.2202 (x1)1109.9 (y1)
2.9880 (x2)(y2=?)
3.0150 (x3)1110.8 (y3)

Express final specific internal energy using interpolation method.

Substitute 3.2202ft3/lbm for x1, 2.9880ft3/lbm for x2, 3.0150ft3/lbm for x3, 1109.9Btu/lbm for y1 and 1110.8Btu/lbm for y3 in Equation (VII).

y2=[(2.98803.2202)ft3/lbm][(1110.81109.9)Btu/lbm](3.01503.2202)ft3/lbm+1109.9Btu/lbm=1110.9Btu/lbm=u2

From above calculation the final specific internal energy is 1110.9Btu/lbm.

Refer Table A-5E, “saturated water-pressure table”, obtain the below properties at specific volume at saturated vapor of 2.9880ft3/lbm using interpolation method of two variables.

Show final specific entropy at specific volume of 2.9880ft3/lbm as in Table (2).

vg(ft3/lbm)s2(Btu/lbmR)
Saturated vapor, sg
3.2202 (x1)1.5757(y1)
2.9880 (x2)(y2=?)
3.0150 (x3)1.5700(y3)

Substitute 3.2202ft3/lbm for x1, 2.9880ft3/lbm for x2, 3.0150ft3/lbm for x3, 1.5757Btu/lbmR for y1 and 1.5700Btu/lbmR for y3 in Equation (VII).

y2={[(2.98803.2202)ft3/lbm][(1.57001.5757)Btu/lbmR](3.01503.2202)ft3/lbm+1.5757Btu/lbmR}=1.5692Btu/lbmR=s2

From above calculation the final specific entropy is 1.5692Btu/lbmR.

Substitute 6lbm for m, 1.5692Btu/lbmR for s2 and 0.70751Btu/lbmR for s1 in Equation (II).

Sgen=(6lbm)(1.56920.70751)Btu/lbmR

Substitute 75°F for T0 and (6lbm)(1.56920.70751)Btu/lbmR for Sgen in Equation (III).

Xdestroyed=(75°F)[(6lbm)(1.56920.70751)Btu/lbmR]=(75+460)R[(6lbm)(1.56920.70751)Btu/lbmR]=(535R)[(6lbm)(1.56920.70751)Btu/lbmR]=2766Btu

Hence, the exergy destruction is 2766Btu.

(b)

Expert Solution
Check Mark
To determine

The second law efficiency for the process.

Answer to Problem 33P

The second law efficiency for the process is 30.9%.

Explanation of Solution

Write the expression for the energy balance equation.

EinEout=ΔEsystemWu,in=ΔU=m(u2u1) (VIII)

Here, the total energy entering the system is Ein, the total energy leaving the system is Eout, the change in the total energy of the system is ΔEsystem and useful work input is Wu,in.

Express the reversible work during process.

Wrev,in=Wu,inXdestroyed (IX)

Express the second law efficiency for the process.

ηII=Wrev,inWu,in×100% (X)

Conclusion:

Substitute 6lbm for m, 1110.9Btu/lbm for u2 and 443.47Btu/lbm for u1 in Equation (VIII).

Wu,in=(6lbm)(1110.9443.47)Btu/lbm=4005Btu

Substitute 4005Btu for Wu,in and 2766Btu for Xdestroyed in Equation (IX).

Wrev,in=4005Btu2766Btu=1239Btu

Substitute 1239Btu for Wrev,in and 4005Btu for Wu,in in Equation (X).

ηII=1239Btu4005Btu×100%=0.309×100%=30.9%

Hence, the second law efficiency for the process is 30.9%.

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Chapter 8 Solutions

EBK THERMODYNAMICS: AN ENGINEERING APPR

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