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 2, Problem 2.12P
To determine

The height h of the left-hand side of the tube above the tank surface.

Expert Solution & Answer
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Answer to Problem 2.12P

The height h of the left-hand side of the tube above the tank surface is 8.0cm.

Explanation of Solution

Write the expression of hydrostatic relation from oil surface to water surface.

[patm+(ρoilgH1)(ρwatergH2)patm]=0 …… (I)

Here, the atmospheric pressure is patm, the density of oil is ρoil, the acceleration due to gravity is g, the density of water is ρwater, the distance from top to oil-water interface on the left side of the tank is H1 and the distance from oil-water interface to top of the right side of tank is H2.

Write expression for the distance from top to oil-water interface on the left side of the tank.

H1=(h+h1) …… (II)

Here, the distance from top to oil-water interface on the left side of the tank is H1, the height of tube above tank surface on the left side is h and the distance from surface of the tank to oil-water interface is h1.

Write expression for the distance from top to oil-water interface on the right side of the tank.

H2=(h1+h2) …… (III)

Here, the distance from top to oil-water interface on the right side of the tank is H2 and the height of tube above tank surface on the right side is h2.

Substitute (h+h1) for H1 and (h1+h2) for H2 in Equation (I).

[patm+(ρoilg(h+h1))(ρwaterg(h1+h2))patm]=0 …… (IV)

Substitute 898kg/m3 for ρoil, 12cm for h1, 998kg/m3 for ρwater and 6cm for h2 in Equation (IV).

[patm+((898kg/m3)(g)(h+(12cm)))((998kg/m3)(g)((12cm)+(6cm)))patm]=0[(898kg/m3)(g)(h+((12cm)(1m100cm)))((998kg/m3)(g)(((12cm)(1m100cm))+((6cm)(1m100cm))))p]=0(898kg/m3)(g)((h)+(0.12m))=(998kg/m3)(g)((0.12m)+(0.06m))(898kg/m3)(h)+(107.76kg/m2)=(179.64kg/m2)

Further simplify the above Equation.

(898kg/m3)(h)=(71.88kg/m2)(h)=(71.88kg/m2)(898kg/m3)=(0.080m)(100cm1m)8.0cm

Conclusion:

Thus, the height h is 8.0cm.

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Chapter 2 Solutions

Fluid Mechanics, 8 Ed

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