Fluid Mechanics, 8 Ed
Fluid Mechanics, 8 Ed
8th Edition
ISBN: 9789385965494
Author: Frank White
Publisher: MCGRAW-HILL HIGHER EDUCATION
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Chapter 3, Problem 3.135P
To determine

The nozzle diameter D for which cavitation began to occur.

Whether the diameter of the nozzle increases or decrease to avoid cavitation.

Expert Solution & Answer
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Answer to Problem 3.135P

The nozzle diameter D for which cavitation began to occur is 0.132ft.

To avoid cavitation. in the nozzle, the diameter D should be less than 0.132ft.

Explanation of Solution

Given information:

The temperature of the water flowing inside the nozzle is 35°C, The diameter at section (1) is 1in . The diameter at section (2) is 3in . The atmospheric pressure is 14.3lbf/in2 . The height of the water level in the left side above the throat is 6ft.

Write the expression for the Bernoulli’s equation between the section (1) and section (3) of the given system.

p1ρg+V122g+z1=p3ρg+V322g+z3        …… (I)

Here, the pressure at section (1) is p1, the velocity at section (1) is V1, the height of the section (1) from the datum is z1, the pressure at section (3) is p3, the velocity at section (3) is V3, the height of the section (3) from the datum is z3

Since the fluid at section (1) and section (3) is at the same level

z1=z3=0

Substitute 0 for z1 and z3 in Equation (I).

p1ρg+V122g=p3ρg+V322gV122g=( p 3 p 1ρg)+V322g        …… (II)

Substitute pv for p1 to avoid cavitation in the nozzle in Equation (II).

V122g=(p3pvρg)+V322g ... (III)

Write the expression for the area at section (1).

A1=π4D12

Here, the diameter at section (1) is D1.

Write the expression for the area at section (3).

A3=π4D32

Here, the diameter at section (3) is D3.

Write the expression for the continuity equation between section (1) and at section (3).

A1V1=A3V3        …… (IV)

Substitute π4D12 for A1 and π4D32 for A3 in Equation (IV).

π4D12V1=π4D32V3D12V1=D32V3        …… (V)

Write the expression for Torricelli equation for the velocity at section (3).

V3=2gh        …… (VI)

Here the acceleration due to gravity is g and height of the tank above the throat is h

Calculation:

Substitute 6ft for h and 32.2ft/s2 for g in Equation (VI).

V3=2×32.2ft/s2×6ftV3=386ft/sV3=19.65ft/s

Convert the pressure at section (3) from lbfin2 to lbfft2.

p3=(14.3lbf in 2)=(14.3lbf in 2)(144 in 21 ft 2)=2059.2lbf/ft2

Refer to the property table to obtain the vapour pressure of water at 35°C as 5.8085kPa.

Convert the vapour pressure from kPa to lbfft2.

pv=5.8085kPa=(5.8085kPa)(20.88 lb/ ft 2 1kPa)121.28lbf/ft2

Substitute 2059.2lbf/ft2 for p3, 121.28lbf/ft2 for pv, 1.93lb/ft3 for ρ and 32.2ft/s2 for g, 19.65ft/s for V3 in Equation (III).

V122(32.2 ft/ s 2 )=(2059.2 lbf/ ft 2 121.28 lbf/ ft 2 ( 1.93 lb/ ft 3 )( 32.2 ft/ s 2 ))+( 19.65 ft/s )22(32.2 ft/ s 2 )V122(32.2 ft/ s 2 )=(1937.92 lbf/ ft 2 62.146 lb/ ft 2 s 2 )+5.99ftV122(32.2 ft/ s 2 )=37.17ftV12=2393.748ft2/s2

V12=2393.748 ft2/s2V1=48.92ft/s

Substitute 48.92ft/s for V1, 19.65ft/s for V3 in Equation (V).

(1in)2(48.92ft/s)=D32(19.65ft/s)(( 1in)( 1ft 12in ))2(48.92ft/s)=D32(19.65ft/s)0.339 ft3/s(19.65 ft/s)=D320.001725ft2=D32

0.001725ft2=D3D3=0.132ft

Conclusion:

The nozzle diameter D for which cavitation began to occur is 0.132ft.

To avoid cavitation in the nozzle diameter D should be less than 0.132ft ..

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Chapter 3 Solutions

Fluid Mechanics, 8 Ed

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