THERMODYNAMICS(SI UNITS,INTL.ED)EBOOK>I
THERMODYNAMICS(SI UNITS,INTL.ED)EBOOK>I
8th Edition
ISBN: 9781307434316
Author: CENGEL
Publisher: INTER MCG
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Chapter 11.10, Problem 113RP

Consider a two-stage compression refrigeration system operating between the pressure limits of 1.4 and 0.12 MPa. The working fluid is refrigerant-134a. The refrigerant leaves the condenser as a saturated liquid and is throttled to a flash chamber operating at 0.5 MPa. Part of the refrigerant evaporates during this flashing process, and this vapor is mixed with the refrigerant leaving the low-pressure compressor. The mixture is then compressed to the condenser pressure by the high-pressure compressor. The liquid in the flash chamber is throttled to the evaporator pressure, and it cools the refrigerated space as it vaporizes in the evaporator. Assuming the refrigerant leaves the evaporator as saturated vapor and both compressors are isentropic, determine (a) the fraction of the refrigerant that evaporates as it is throttled to the flash chamber, (b) the amount of heat removed from the refrigerated space and the compressor work per unit mass of refrigerant flowing through the condenser, and (c) the coefficient of performance.

(a)

Expert Solution
Check Mark
To determine

The fraction of the refrigerant that evaporates as it is throttled to the flash chamber.

Answer to Problem 113RP

The fraction of the refrigerant that evaporates as it is throttled to the flash chamber is 0.290.

Explanation of Solution

Show the T-s diagram as in Figure (1).

THERMODYNAMICS(SI UNITS,INTL.ED)EBOOK>I, Chapter 11.10, Problem 113RP

From Figure (1), write the specific enthalpy at state 5 is equal to state 6 due to throttling process.

h5h6 (I)

Here, specific enthalpy at state 5 and 6 is h5andh6 respectively.

From Figure (1), write the specific enthalpy at state 7 is equal to state 8 due to throttling process.

h7h8 (II)

Here, specific enthalpy at state 7 and 8 is h7andh8 respectively.

Express the fraction of the refrigerant that evaporates as it is throttled to the flash chamber

x6=h6h8hfg@500kPa (III)

Here, specific enthalpy at saturated vapor is hg and specific enthalpy at evaporation and pressure of 500kPa(0.5MPa) is hfg@500kPa.

Conclusion:

Perform unit conversion of pressure at state 1 from kPatoMPa.

P1=0.12MPa[1000kPaMPa]=120kPa

Refer Table A-12, “saturated refrigerant-134a-pressure table”, and write the properties corresponding to pressure at state 1 (P1) of 120kPa.

h1=hg=236.99kJ/kgs1=sg=0.94789kJ/kgK

Here, specific entropy and enthalpy at state 1 is s1andh1 respectively,  specific enthalpy and entropy at saturated vapor is hgandsg respectively.

Refer Table A-13, “superheated refrigerant 134a”, and write the specific enthalpy at state 2 corresponding to pressure at state 2 of 0.5MPa and specific entropy at state 2 (s2=s1) of 0.94789kJ/kgK using interpolation method.

Write the formula of interpolation method of two variables.

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

Here, the variables denote by x and y is specific entropy at state 2 and specific enthalpy at state 2 respectively.

Show the specific enthalpy at state 2 corresponding to specific entropy as in Table (1).

Specific entropy at state 2

s2(kJ/kgK)

Specific enthalpy at state 2

h2(kJ/kg)

0.9384 (x1)263.48 (y1)
0.94789 (x2)(y2=?)
0.9704 (x3)273.03 (y3)

Substitute 0.9384kJ/kgK,0.94789kJ/kgKand0.9704kJ/kgK for x1,x2andx3 respectively, 263.48kJ/kg for y1 and 273.03kJ/kg for y3 in Equation (IV).

y2=[(0.947890.9384)kJ/kgK][(273.03263.48)kJ/kg](0.97040.9384)kJ/kgK+263.48kJ/kg=266.29kJ/kg=h2

Thus, the specific enthalpy at state 2 is,

h2=266.29kJ/kg

Perform unit conversion of pressure at state 3 from kPatoMPa.

P3=0.5MPa[1000kPaMPa]=500kPa

Refer Table A-12, “saturated refrigerant-134a-pressure table”, and write the property corresponding to pressure at state 3 (P3) of 500kPa.

h3=hg=259.36kJ/kg

Perform unit conversion of pressure at state 5 from kPatoMPa.

P5=1.4MPa[1000kPaMPa]=1400kPa

Refer Table A-12, “saturated refrigerant-134a-pressure table”, and write the property corresponding to pressure at state 5 (P5) of 1400kPa.

h5=hf=127.25kJ/kg

Here, specific enthalpy at saturated liquid is hf.

Substitute 127.25kJ/kg for h5 in Equation (I).

h6=127.25kJ/kg

Refer Table A-12, “saturated refrigerant-134a-pressure table”, and write the property corresponding to pressure at state 8 (P8) of 500kPa.

h8=hf=73.32kJ/kg

Substitute 73.32kJ/kg for h8 in Equation (II).

h7=63.92kJ/kg

Refer Table A-12, “saturated refrigerant-134a-pressure table”, and write the specific enthalpy at evaporation and pressure of 500kPa.

hfg@500kPa=186.04kJ/kg

Substitute 127.25kJ/kg for h6, 73.32kJ/kg for h8 and 186.04kJ/kg for hfg@500kPa in Equation (III).

x6=127.25kJ/kg73.32kJ/kg186.04kJ/kg=0.28990.290

Hence, the fraction of the refrigerant that evaporates as it is throttled to the flash chamber is 0.290.

(b)

Expert Solution
Check Mark
To determine

The amount of heat removed from the refrigerated space and the compressor work per unit mass of refrigerant flowing through the condenser.

Answer to Problem 113RP

The amount of heat removed from the refrigerated space is 116kJ/kg and the compressor work per unit mass of refrigerant flowing through the condenser is 42.7kJ/kg.

Explanation of Solution

Express the enthalpy at state 9 by using an energy balance on the mixing chamber.

E˙inE˙out=ΔE˙systemE˙inE˙out=0m˙ehe=m˙ihi

E˙in=E˙out(1)h9=x6h3+(1x6)h2 (V)

Here, the rate of total energy entering the system is E˙in, the rate of total energy leaving the system is E˙out, the rate of change in the total energy of the system is ΔE˙system, mass flow rate at exit and inlet is m˙eandm˙i respectively, and specific enthalpy at exit and inlet is heandhi respectively.

Express the amount of heat removed from the refrigerated space.

qL=(1x6)(h1h8) (VI)

Express the compressor work per unit mass of refrigerant flowing through the condenser.

win=(1x6)(h2h1)+(h4h9) (VII)

Conclusion:

Substitute 0.2899 for x6, 259.36kJ/kg for h3, and 266.29kJ/kg for h2 in Equation (V).

(1)h9=(0.2899)(259.36kJ/kg)+(10.2899)(266.29kJ/kg)h9=264.28kJ/kg

Refer Table A-13, “superheated refrigerant 134a”, and write the specific entropy at state 9 corresponding to pressure at state 9 of 0.5MPa and specific enthalpy at state 9 of 264.28kJ/kg using interpolation method.

Show the specific enthropy at state 9 corresponding to specific enthalpy as in Table (2).

Specific enthalpy at state 9

h9(kJ/kg)

Specific entropy at state 9

s9(kJ/kgK)

263.48 (x1)0.9384 (y1)
264.28 (x2)(y2=?)
273.03 (x3)0.9704 (y3)

Use excels and tabulates the values of Table (2) in Equation (IV) to get,

y2=0.94108kJ/kgK=s9

Thus, the specific entropy at state 9 is,

s9=0.94108kJ/kgK

Refer Table A-13, “superheated refrigerant 134a”, and write the specific enthalpy at state 4 corresponding to pressure at state 4 of 1.4MPa and specific entropy at state 2 (s9=s4) of 0.94108kJ/kgK using interpolation method.

h4=286.19kJ/kg

Substitute 0.2899 for x6, 236.99kJ/kgand73.32kJ/kg for h1andh8 respectively in Equation (VI).

qL=(10.2899)(236.99kJ/kg73.32kJ/kg)=116.2kJ/kg116kJ/kg

Hence, the amount of heat removed from the refrigerated space is 116kJ/kg.

Substitute 0.2899 for x6, 266.29kJ/kgand236.99kJ/kg for h2andh1 respectively and 286.19kJ/kgand264.28kJ/kg for h4andh9 respectively in Equation (VII).

win=(10.2899)(266.29kJ/kg236.99kJ/kg)+(286.19kJ/kg264.28kJ/kg)=42.7kJ/kg

Hence, the compressor work per unit mass of refrigerant flowing through the condenser is 42.7kJ/kg.

(c)

Expert Solution
Check Mark
To determine

The coefficient of performance of the system.

Answer to Problem 113RP

The coefficient of performance of the system is 2.72.

Explanation of Solution

Express the coefficient of performance of the system.

COP=qLwin (VIII)

Conclusion:

Substitute 116.2kJ/kg for qL and 42.7kJ/kg for win in Equation (VIII).

COP=116.2kJ/kg42.7kJ/kg=2.72

Hence, the coefficient of performance of the system is 2.72.

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Chapter 11 Solutions

THERMODYNAMICS(SI UNITS,INTL.ED)EBOOK>I

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