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 7, Problem 7.3P
To determine

Calculate the boundary layer thickness at both occasions and compare it?

Expert Solution & Answer
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Answer to Problem 7.3P

If the flow is turbulent throughout the flow, the δ=0.02735m

Or δ=0.02134m

Therefore, fully turbulent flow will have a boundary layer thickness which is almost 28% higher.

Explanation of Solution

Given information:

Laminar to turbulent transition point is given as Reexit

x=1.5m

Velocity of the flow is equal to 40m/s

Rex.crit=1.2×106

For laminar flow,

δx=5.0Rex1/2

The Reynolds’s number is defined as,

Rex=ρVxμ

In above equation,

V - Velocity

ρ - Density

μ - Dynamic viscosity

δ - Boundary layer thickness

For turbulent flow,

δx=0.16Rex1/7

Assume, air at 20°C will have,

ρ=1.2kg/m3μ=1.8×105kg/ms

Calculation:

Calculate the distance from leading edge at critical point,

Rex.crit=ρVxμ1.2×106=(1.2kg/ m 3)(40m/s)xcritical1.8×105kg/msxcritical=0.45

Calculate the relevant boundary layer thickness,

δcriticalxcritical=5.0Rex1/2δcritical=5.0(0.45)( 1.2× 10 6 )1/2δcritical=0.00205m

Find the relevant leading edge distance for turbulent flow,

δcriticalxturbulent=0.16Rex1/70.00205mxturbulent=0.16( (1.2kg/ m 3)(40m/s)( x turbulent) 1.8×105kg/ms )1/7xturbulent=0.073

Now, at x=1.5m

Find the effective length,

xeffective=1.5m+xturbulentxcritical=1.5+0.073+0.45=1.123m

Find the effective Reynolds’s number,

Reeffective=ρVxμ=(1.2kg/ m 3)(40m/s)(1.123m)1.8×105kg/ms=2.995×106

Calculate the boundary layer thickness,

δxeffective=0.16Rex1/7δ1.123=0.16( 2.995× 10 6 )1/7δ=0.02134m

Now, calculate the boundary layer thickness for all turbulent flow,

δxeffective=0.16Rex1/7δ1.5=0.16( (1.2kg/ m 3)(40m/s)(1.5m) 1.8×105kg/ms )1/7δ=0.02735m

Conclusion:

If the flow is turbulent throughout the flow, the δ=0.02735m

Or δ=0.02134m

Therefore, fully turbulent flow will have a boundary layer thickness which is almost 28% higher.

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Chapter 7 Solutions

Fluid Mechanics, 8 Ed

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