EBK THERMODYNAMICS: AN ENGINEERING APPR
EBK THERMODYNAMICS: AN ENGINEERING APPR
8th Edition
ISBN: 9780100257054
Author: CENGEL
Publisher: YUZU
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Chapter 9.12, Problem 170RP
To determine

The specific impulse of the jet engine.

Expert Solution & Answer
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Answer to Problem 170RP

The specific impulse of the jet engine is 49ft/s.

Explanation of Solution

Draw the Ts diagram for pure jet engine as shown in Figure (1).

EBK THERMODYNAMICS: AN ENGINEERING APPR, Chapter 9.12, Problem 170RP

Consider that the aircraft is stationary, and the velocity of air moving towards the aircraft is V1=1200ft/s, the air will leave the diffuser with a negligible velocity (V20).

Diffuser :

Write the expression for the energy balance equation for the diffuser.

E˙inE˙out=ΔE˙system (I)

Here, the rate of energy entering the system is E˙in, rate of energy leaving the system is E˙out, and the rate of change in the energy of the system is ΔE˙system.

Write the temperature and pressure relation for the process 1-2.

P2=P1(T2T1)k/(k1) (II)

Here, the specific heat ratio of air is k, pressure at state 1 is P1, pressure at state 2 is P2, temperature at state 1 is T1 and temperature at state 2 is T2.

Compressor:

Write the pressure relation using the pressure ratio for the process 2-3.

P3=P4=(rp)(P2) (III)

Here, the pressure ratio is rp, pressure at state 3 is P3 and pressure at state 4 is P4.

Write the temperature and pressure relation for the process 2-3.

T3=T2(P3P2)(k1)/kT3=T2(rp(k1)/k) (IV)

Here, temperate at state 3 is T3.

Turbine:

Write the temperature relation for the compressor and turbine.

wcomp,in=wturb,outh3h2=h4h5cp(T3T2)=cp(T4T5)

T3T2=T4T5T5=T4T3+T2 (V)

Here, the specific heat at constant pressure is cp, enthalpy at state 2 is h2, enthalpy at state 3 is h3, enthalpy at state 4 is h4, enthalpy at state 5 is h5, work input to the compressor is wcomp,in, work output from turbine is wturb,out

, temperature at state 4 is T4 and temperature at state 5 is T5.

Nozzle:

Write the temperature and pressure relation for the isentropic process 4-6.

T6=T4(P6P4)(k1)/k (VI)

Here, pressure at state 6 is P6 and temperature at state 6 is T6.

Write the energy balance equation for the nozzle.

E˙inE˙out=ΔE˙system (VII)

Write the expression to calculate the specific impulse of the jet engine.

Fm˙=(VexitVinlet) (VIII)

Here, the thrust force produced by engine is F, mass flow rate of air is m˙, inlet velocity of air is Vinlet, and outlet velocity of air is Vexit.

Conclusion.

From Table A-1E, “Molar mass, gas constant, and critical-point properties”, obtain the

value of gas constant (R) for air substance as 0.3704psiaft3/lbmR.

From Table A-2Ea, “Ideal-gas specific heats of various common gases”, obtain the following values for air at room temperature.

k=1.4cp=0.24Btu/lbmR

The rate of change in the energy of the system (ΔE˙system) is zero for the steady state system.

Substitute 0 for ΔE˙system Equation (I).

E˙inE˙out=0E˙in=E˙outh1+V122=h2+V222

0=h2h1+V22V1220=cp(T2T1)V22V122 (IX)

Here, inlet velocity is V1 or Vinlet and velocity at state 2 is V2.

Substitute 0 for V2, 30°F for T1, 1200ft/s for V1, and 0.24Btu/lbmR for cp in Equation (IX).

0=0.24Btu/lbmR(T2(30°F))V22(1200ft/s)22T2=(30+460)R+(1200ft/s)2(2)(0.24Btu/lbmR)(1Btu/lbm25037ft2/s2)T2=609.8R

Substitute 10psia for P1, 609.8 R for T2, 30°F for T1, and 1.4 for k in Equation (II).

P2=(10psia)(609.8R30°F)1.4/1.41=(10psia)(609.8R(30+460)R)1.4/1.41=21.5psia

Substitute 9 for rp, and 21.5psia for P2 in Equation (III).

P3=P4=(9)(21.5)=193.5psia

Substitute 609.8 R for T2, 1.4 for k, and 9 for rp in Equation (IV).

T3=(609.8)(9)1.41/1.4=1142.4R

Substitute 700°F for T4, 1142.4 R for T3, and 609.8 R for T2 in Equation (V).

T5=((700°F)1142.4R+609.8R)=(700+460)R1142.4R+609.8R=627.4R

Substitute 700°F for T4, 1.4 for k, 10psia for P6, and 193.5psia for P4 in Equation (VI).

T6=(700°F)(10psia193.5psia)1.41/1.4=(700+460)R(10psia193.5psia)1.41/1.4=497.5R

The rate of change in the energy of the system (ΔE˙system) is zero for the steady state system.

Substitute 0 for ΔE˙system Equation (VII).

E˙in=E˙outh5+V522=h6+V6220=h6h5+V62V5220=cp(T6T5)V62V522 (X)

Here, velocity at stat 5 is V5, exit velocity is V6 or Vexit and temperate at state 6 is T6.

Since, V5=V2

Substitute 0 for V5, 627.4R for T5, 497.5R for T6, and 0.24Btu/lbmR for cp to find V6 in Equation (X).

0=0.24Btu/lbmR(497.5R627.4R)V6202V6=2(0.24Btu/lbmR)(627.4R497.5R)(25037ft2/s21Btu/lbm)V6=1249ft/sV6=Vexit=1249ft/s

Substitute 1200ft/s for Vinlet and 1249ft/s for Vexit in Equation (VIII).

Fm˙=(1249ft/s1200ft/s)=49ft/s

Thus, the specific impulse of the jet engine is 49ft/s.

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Chapter 9 Solutions

EBK THERMODYNAMICS: AN ENGINEERING APPR

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