Thermodynamics: An Engineering Approach
Thermodynamics: An Engineering Approach
9th Edition
ISBN: 9781260048766
Author: CENGEL
Publisher: MCG
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Chapter 1.11, Problem 53P

The absolute pressure in water at a depth of 9 m is read to be 185 kPa. Determine (a) the local atmospheric pressure and (b) the absolute pressure at a depth of 5 m in a liquid whose specific gravity is 0 85 at the same location.

(a)

Expert Solution
Check Mark
To determine

The local atmospheric pressure in a liquid.

Answer to Problem 53P

The local atmospheric pressure in a liquid is 109.9535kPa_.

Explanation of Solution

Show the free body diagram of the absolute pressure in water.

Thermodynamics: An Engineering Approach, Chapter 1.11, Problem 53P

Determine the density of the liquid.

  ρ=SG×ρH2O                                     …… (I)

Here, the specific gravity is SG and the density of water is ρH2O.

Write the expression of atmospheric pressure.

  Patm=Pρgh                                          …… (II)

Here, the absolute pressure is P, the density is ρ, the height of the mercury column above the free surface is h, and acceleration of gravity is g.

Conclusion:

Substitute 0.85 for SG and 1000kg/m3 for ρH2O in Equation (I).

  ρ=(0.85)×(1000kg/m3)=850kg/m3

Substitute 185kPa for P, 850kg/m3 for ρ, 9.81m/s2 for g, and 9m for h in Equation (II).

  Patm=(185kPa)(850kg/m3)(9.81m/s2)(9m)=(185kPa)(75046.5N/m2)×(1kPa1000N/m2)=185kPa75.0465kPa=109.9535kPa

Thus, local atmospheric pressure in a liquid is 109.9535kPa_.

(b)

Expert Solution
Check Mark
To determine

The absolute pressure in a liquid.

Answer to Problem 53P

The absolute pressure in a liquid is 151.646kPa_.

Explanation of Solution

Write the expression of absolute pressure.

  P=Patm+ρgh                                          …… (III)

Here, the absolute pressure is P, the density is ρ, the height of the mercury column above the free surface is h, and acceleration of gravity is g.

Conclusion:

Substitute 109.9535kPa for Patm, 850kg/m3 for ρ, 9.81m/s2 for g, and 5m for h in Equation (III).

  P=(109.9535kPa)+(850kg/m3)(9.81m/s2)(5m)=(109.9535kPa)+(41692.5N/m2)×(1kPa1000N/m2)=109.9535kPa+41.6825kPa=151.646kPa

Thus, the absolute pressure in a liquid is 151.646kPa_.

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Chapter 1 Solutions

Thermodynamics: An Engineering Approach

Ch. 1.11 - The value of the gravitational acceleration g...Ch. 1.11 - A 3-kg plastic tank that has a volume of 0.2 m3 is...Ch. 1.11 - A 2-kg rock is thrown upward with a force of 200 N...Ch. 1.11 - Solve Prob. 113 using appropriate software. 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