Thermodynamics: An Engineering Approach
Thermodynamics: An Engineering Approach
9th Edition
ISBN: 9781259822674
Author: Yunus A. Cengel Dr., Michael A. Boles
Publisher: McGraw-Hill Education
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Chapter 14.7, Problem 111P

(a)

To determine

The volume flow rate of air into the cooling tower.

(a)

Expert Solution
Check Mark

Answer to Problem 111P

The volume flow rate of air into the cooling tower is 7.58m3/s.

Explanation of Solution

As the process is a steady flow and thus the mass flow rate of dry air remains constant during the entire process.

m˙a1=m˙a2=m˙a

Here, the mass flow rate of air at inlet is m˙a1, mass flow rate of dry air at exit is m˙a2 and mass flow rate of dry air is m˙a.

Express the water mass balance:

m˙w,i=m˙w,em˙3+m˙a1ω1=m˙4+m˙2ω2m˙3m˙4=m˙a(ω2ω1)

Here, mass flow rate of water at inlet and exit is m˙w,iandm˙w,e respectively, specific humidity at state 1 and 2 is ω1andω2 respectively; mass flow rate at state 2, 3 and 4 is m˙2,m˙3andm˙4 respectively.

Express the energy balance.

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

0=m˙ehem˙ihi0=m˙a2h2+m˙4h4m˙a1h1m˙3h3m˙a=m˙3(h3h4)(h2h1)(ω2ω1)h4 (I)

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, initial and exit mass flow rate is m˙iandm˙e respectively, enthalpy at inlet and exit is hiandhe respectively and enthalpy at state 1, 2, 3 and 4 is h1,h2,h3andh4 respectively.

Express initial partial pressure.

Pν1=ϕ1Pg1=ϕ1Psat@20°C (II)

Here, relative humidity at state 1 is ϕ1, initial vapor pressure is Pg1 and saturation pressure at temperature of 20°C is Psat@20°C.

Express partial pressure of air at state 1.

Pa1=P1Pν1 (III)

Here, pressure at state 1 is P1.

Express specific volume at state 1.

v1=RaT1Pa1 (IV)

Here, gas constant of air is Ra and temperature at state 1 is T1.

Express initial humidity ratio.

ω1=0.622Pν1P1Pν1 (V)

Express initial enthalpy.

h1=cpT1+ω1hg1@20°C (VI)

Here, specific heat at constant pressure is cp and initial specific enthalpy saturated vapor at temperature of 20°C is hg1@20°C.

Express final partial pressure.

Pν2=ϕ2Pg2=ϕ2Psat@35°C (VII)

Here, relative humidity at state 2 is ϕ2, final vapor pressure is Pg2 and saturation pressure at temperature of 35°C is Psat@35°C.

Express final humidity ratio.

ω2=0.622Pν2P2Pν2 (VIII)

Here, pressure at state 2 is P2.

Express final enthalpy.

h2=cpT2+ω2hg2@35°C (IX)

Here, final specific enthalpy saturated vapor at temperature of 35°C is hg2@35°C.

Express the volume flow rate of air into the cooling tower.

ν˙1=m˙av1 (X)

Here, specific volume at inlet is v1.

Conclusion:

Refer Table A-2, “ideal-gas specific heats of various common gases”, and write the properties of air.

cp=1.005kJ/kg°CRa=0.2870kPam3/kgK

Refer Table A-4, “saturated water-temperature table”, and write the saturation pressure and initial specific enthalpy saturated vapor at temperature of 20°C.

Psat@20°C=2.3392kPahg1@20°C=2537.4kJ/kg

Substitute 0.70 for ϕ1 and 2.3392kPa for Psat@20°C in Equation (II).

Pν1=(0.70)(2.3392kPa)=1.637kPa

Substitute 96kPa for P1 and 1.637kPa for Pν1 in Equation (III).

Pa1=96kPa1.637kPa=94.363kPa

Substitute 0.2870kPam3/kgK for Ra, 20°C for T1 and 94.363kPa for Pa1 in Equation (IV).

v1=(0.2870kPam3/kgK)(20°C)94.363kPa=(0.2870kPam3/kgK)[(20+273)K]94.363kPa=(0.2870kPam3/kgK)(293K)94.363kPa=0.8911m3/kgdryair

Substitute 1.637kPa for Pν1 and 96kPa for P1 in Equation (V).

ω1=0.622(1.637kPa)96kPa1.637kPa=0.01079kgH2O/kgdryair

Substitute 1.005kJ/kg°C for cp, 20°C for T1, 0.01079kgH2O/kgdryair for ω1, and 2537.4kJ/kg for hg1@20°C in Equation (VI).

h1=(1.005kJ/kg°C)(20°C)+(0.01079)(2537.4kJ/kg)=47.5kJ/kgdryair

Refer Table A-4, “saturated water-temperature table”, and write the saturation pressure and final specific enthalpy saturated vapor at temperature of 35°C.

Psat@35°C=5.6291kPahg2@35°C=2564.6kJ/kg

Substitute 1 for ϕ2 and 5.6291kPa for Psat@35°C in Equation (VII).

Pν2=(1)(5.6291kPa)=5.6291kPa

Substitute 5.6291kPa for Pν2 and 96kPa for P2 in Equation (VIII).

ω2=0.622(5.6291kPa)96kPa5.6291kPa=0.03874kgH2O/kgdryair

Substitute 1.005kJ/kg°C for cp, 35°C for T2, 0.03874kgH2O/kgdryair for ω2, and 2564.6kJ/kg for hg2@35°C in Equation (IX).

h2=(1.005kJ/kg°C)(35°C)+(0.03874)(2564.6kJ/kg)=134.5kJ/kgdryair

Refer Table A-4, “saturated water-temperature table”, and write the enthalpy at state 3 at temperature of 40°C.

h3=hf=167.53kJ/kgH2O

Here, enthalpy of saturation liquid is hf.

Refer Table A-4, “saturated water-temperature table”, and write the enthalpy at state 4 at temperature of 30°C.

h4=hf=125.74kJ/kgH2O

Substitute 17kg/s for m˙3, 167.53kJ/kgH2O for h3, 125.74kJ/kgH2O for h4, 134.5kJ/kgdryair for h2, 47.5kJ/kgdryair for h1, 0.01079kgH2O/kgdryair for ω1 and 0.03874kgH2O/kgdryair for ω2 in Equation (I).

m˙a=(17kg/s)(167.53125.74)kJ/kgH2O(134.547.5)kJ/kg(0.038740.01079)(125.74kJ/kgH2O)=8.507kg/s

Substitute 8.507kg/s for m˙a and 0.8911m3/kgdryair for ν1 in Equation (X).

ν˙1=(8.507kg/s)(0.8911m3/kgdryair)=7.58m3/s

Hence, the volume flow rate of air into the cooling tower is 7.58m3/s.

(b)

To determine

The mass flow rate of the required makeup water.

(b)

Expert Solution
Check Mark

Answer to Problem 111P

The mass flow rate of the required makeup water is 0.238kg/s.

Explanation of Solution

Express the mass flow rate of the required makeup water.

m˙makeup=m˙a(ω2ω1) (XI)

Conclusion:

Substitute 8.507kg/s for m˙a, 0.01079kgH2O/kgdryair for ω1 and 0.03874kgH2O/kgdryair for ω2 in Equation (XI).

m˙makeup=8.507kg/s(0.038740.01079)=0.238kg/s

Hence, the mass flow rate of the required makeup water is 0.238kg/s.

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Chapter 14 Solutions

Thermodynamics: An Engineering Approach

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