CONNECT FOR THERMODYNAMICS: AN ENGINEERI
CONNECT FOR THERMODYNAMICS: AN ENGINEERI
9th Edition
ISBN: 9781260048636
Author: CENGEL
Publisher: MCG
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Textbook Question
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Chapter 4.5, Problem 29P

Complete each line of the following table on the basis of the conservation of energy principle for a closed system.

Qin

kJ

Wout

kJ

E1

kJ

E2

kJ

m

kg

e2 – e1

kJ/kg

280 1020 860 3
−350 130 550 5
260 300 2 −150
300 750 500 1
−200 300 2 −100

FIGURE P4–29

Expert Solution & Answer
Check Mark
To determine

Fill the blanks from the below table on the basis of the conservation of energy principle for a closed system.

Qin(kJ)Wout(kJ)E1(kJ)E2(kJ)m(kg)e2e1(kJ/kg)
280 10208603 
350130550 5 
 260300 2–150
300 7505001 
 200 3002100

Explanation of Solution

Write the energy balance equation for closed system.

EinEout=ΔEsystem (I)

Here, energy transfer in to the control volume is Ein, energy transfer exit from the control volume is Eout and change in internal energy of system is ΔEsystem.

Substitute Qin for Ein, Wb,out for Eout and m(e2e1) for ΔEsystem in Equation (I).

QinWb,out=m(e2e1) . (II)

Here, amount of heat transfer into the system is Qin, mass in the system is m, work done output is Wb,out, final internal energy is e2 and initial internal energy is e1.

Substitute Qin for Ein, Wb,out for Eout and E2E1 for ΔEsystem in Equation (I).

QinWb,out=E2E1 (III)

Here, initial and final internal energy are E2 and E1.

Conclusion:

For row I

Substitute 280kJ for Qin, 860kJ for E2, and 1020kJ for E1 in Equation (III).

280kJWb,out=860kJ1020kJ280kJWb,out=160kJWb,out=280kJ+160kJWb,out=440kJ_

Substitute 280kJ for Qin, 3kg for m, and 440kJ for Wb,out in Equation (II).

280kJ440kJ=3kg(e2e1)(e2e1)=53.3kJ/kg_

For row II

Substitute 350kJ for Qin, 130kJ for Wb,out, and 550kJ for E1 in Equation (III).

350kJ130kJ=E2550kJE2=350kJ130kJ+550kJE2=70kJ_

Substitute 350kJ for Qin, 5kg for m, and 130kJ for Wb,out in Equation (II).

350kJ130kJ=5kg(e2e1)(e2e1)=350kJ130kJ5kg(e2e1)=96kJ/kg_

For row III

Substitute 260kJ for Wb,out, 2kg for m, and 150kJ/kg for (e2e1) in Equation (III).

Qin260kJ=2kg×(150kJ/kg)Qin=40kJ_

Substitute 40kJ for Qin, 300kJ for E1, and 260kJ for Wb,out in Equation (II).

40kJ260kJ=E2300kJE2=0_

For row IV

Substitute 300kJ for Qin, 500kJ for E2, and 750kJ for E1 in Equation (III).

300kJWb,out=500kJ750kJWb,out=550kJ_

Substitute 300kJ for Qin, 1kg for m, and 550kJ for Wb,out in Equation (II).

300kJ550kJ=1kg(e2e1)(e2e1)=250kJ/kg_

For row V

Substitute 200kJ for Wb,out, 2kg for m, and 100kJ/kg for (e2e1) in Equation (III).

Qin(200kJ)=2kg×(100kJ/kg)Qin=200kJ200kJQin=400kJ_

Substitute 400kJ for Qin, 300kJ for E2, and 200kJ for Wb,out in Equation (II).

400kJ(200kJ)=300kJE1E1=500kJ_

The following table blanks are filled and are shown below as summarized.

Qin(kJ)Wout(kJ)E1(kJ)E2(kJ)m(kg)e2e1(kJ/kg)
280440kJ_1020860353.3kJ/kg_
35013055070kJ_596kJ/kg_
40kJ_2603000_2–150
300550kJ_7505001250kJ/kg_
400kJ_200500kJ_3002100

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Chapter 4 Solutions

CONNECT FOR THERMODYNAMICS: AN ENGINEERI

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