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This page describes some parameters used to measure the properties of [[boundary-layer|boundary layers]]. Consider a stationary body with a turbulent flow moving around it, like the semi-infinite flat plate with air flowing over the top of the plate. At the solid walls of the body the fluid satisfies a [[no-slip boundary condition]] and has zero velocity, but as you move away from the wall, the velocity of the flow asymptotically approaches the free stream mean velocity. Therefore it is impossible to define a clear point at which the boundary layer becomes the free stream. The parameters below overcome this and allow the boundary layer to be measured.
 
 
 
== Motivations for boundary layers ==
{{Main|Boundary layer}}
 
As the [[Navier-Stokes equations]] that describe the motion of fluids are not solved in the general case, simplifying assumptions are used to describe approximate behaviour. For a fluid of low [[viscosity]] (compared to the geometrical configuration of the problem), the [[Reynolds number]] is large and the viscous term in the Navier-Stokes equation is small compared to the inertial term in much of the space. However, this is not true near the boundaries of the fluid and this description fails to capture some important behavior in a lot of real systems, for instance the [[Kármán vortex street]] or the [[drag force]] on an airplane wing.
 
== 99% Boundary Layer thickness ==
The '''boundary layer thickness''', '''δ''',  is the distance across a boundary layer from the wall to a point where the flow velocity has essentially reached the 'free stream' velocity, <math>u_0</math>. This distance is defined normal to the wall, and the point where the flow velocity is essentially that of the free stream is customarily defined as the point where:
:<math>u(y) = 0.99u_o</math>
 
For laminar boundary layers over a flat plate, the [[Blasius boundary layer|Blasius solution]] gives:
:<math> \delta \approx 4.91 \sqrt{ {\nu x}\over u_0} </math>
:<math> \delta \approx 4.91 x/ \sqrt{\mathrm{Re}_x} </math>
 
For turbulent boundary layers over a flat plate, the boundary layer thickness is given by:
:<math> \delta \approx 0.382x/ {\mathrm{Re}_x}^{1/5} </math>
 
where
:<math> \mathrm{Re}_x = \rho u_0 x/\mu</math>
 
:<math>\delta</math> is the overall thickness (or height) of the boundary layer
:<math>\mathrm{Re}_x</math> is the [[Reynolds Number]]
:<math>\rho</math> is the density
:<math>u_0</math> is the freestream velocity
:<math>x</math> is the distance downstream from the start of the boundary layer
:<math>\mu</math> is the dynamic viscosity
 
The velocity thickness can also be referred to as the Soole ratio, although the gradient of the thickness over distance would be adversely proportional to that of velocity thickness.
 
== Displacement thickness ==
 
The '''displacement thickness''', '''δ<sup>*</sup>''' or '''δ<sub>1</sub>''' is the distance by which a surface would have to be moved in the direction perpendicular to its normal vector away from the reference plane in an inviscid fluid stream of velocity <math>u_0</math> to give the same flow rate as occurs between the surface and the reference plane in a real fluid.<ref name="Schlicting, H." />
 
In practical [[aerodynamics]], the displacement thickness essentially modifies the shape of a body immersed in a fluid to allow an inviscid solution. It is commonly used in aerodynamics to overcome the difficulty inherent in the fact that the fluid velocity in the [[boundary layer]] approaches asymptotically to the free stream value as distance from the wall increases at any given location.
 
The definition of the displacement thickness for [[compressibility|compressible]] flow is based on mass flow rate:
 
:<math> {\delta^*}= \int_0^\infty {\left(1-{\rho(y) u(y)\over \rho_0 u_0}\right) \,\mathrm{d}y}</math>
 
The definition for [[compressibility|incompressible]] flow can be based on volumetric flow rate, as the density is constant:
 
:<math> {\delta^*}= \int_0^\infty {\left(1-{u(y)\over u_0}\right) \,\mathrm{d}y}</math>
 
Where <math>\rho_0</math> and <math>u_0</math> are the density and velocity in the 'free stream' outside the boundary layer, and <math>y</math> is the coordinate normal to the wall.
 
For boundary layer calculations, the density and velocity at the edge of the boundary layer must be used, as there is no free stream.  In the equations above, <math>\rho_0</math> and <math>u_0</math> are therefore replaced with <math>\rho_e</math> and <math>u_e</math>.
 
The displacement thickness is used to calculate the boundary layer's [[Shape factor (boundary layer flow)|shape factor]].
 
== Momentum thickness ==
 
The '''momentum thickness''', '''θ''' or '''δ<sub>2</sub>''', is the distance by which a surface would have to be moved parallel to itself towards the reference plane in an inviscid fluid stream of velocity <math>u_0</math> to give the same total momentum as exists between the surface and the reference plane in a real fluid.<ref name="Schlicting, H." />
 
The definition of the momentum thickness for [[compressibility|compressible]] flow is based on mass flow rate:
 
:<math> \theta = \int_0^\infty {{\rho(y) u(y)\over \rho_0 u_o} {\left(1 - {u(y)\over u_o}\right)}} \,\mathrm{d}y </math>
 
The definition for [[compressibility|incompressible]] flow can be based on volumetric flow rate, as the density is constant:
 
:<math> \theta = \int_0^\infty {{u(y)\over u_o} {\left(1 - {u(y)\over u_o}\right)}} \,\mathrm{d}y </math>
 
Where <math>\rho_0</math> and <math>u_0</math> are the density and velocity in the 'free stream' outside the boundary layer, and <math>y</math> is the coordinate normal to the wall.
 
For boundary layer calculations, the density and velocity at the edge of the boundary layer must be used, as there is no free stream. In the equations above, <math>\rho_0</math> and <math>u_0</math> are therefore replaced with <math>\rho_e</math> and <math>u_e</math>.
 
For a flat plate at no [[angle of attack]] with a laminar boundary layer, the Blasius solution gives
 
:<math> \theta \approx 0.664 \sqrt{{\nu x}\over u_o}</math>
 
The influence of fluid [[viscosity]] creates a wall [[shear stress]], <math> \tau_w </math>, which extracts energy from the mean flow. The boundary layer can be considered to possess a total momentum flux deficit, due to the frictional [[dissipation]].
 
:<math> \rho \int_0^\infty {u(y) \left(u_o - u(y)\right)} \,\mathrm{d}y </math>
 
Other length scales describing viscous boundary layers include the [[energy thickness]], <math>\delta_3</math>.
 
== Shape factor ==
 
A '''shape factor''' is used in [[boundary layer flow]] to determine the nature of the flow.
 
:<math>H = \frac {\delta^*}{\theta}</math>
 
where ''H'' is the shape factor, <math>\delta^*</math> is the [[displacement thickness]] and ''θ'' is the [[momentum thickness]]. The higher the value of ''H'', the stronger the adverse [[pressure gradient]]. A high adverse pressure gradient can greatly reduce the [[Reynolds number]] at which transition into [[turbulence]] may occur.
 
Conventionally, ''H'' = 2.59 (Blasius boundary layer) is typical of laminar flows, while ''H'' = 1.3 - 1.4 is typical of turbulent flows.
 
== Further reading ==
* F.M. White, "Fluid Mechanics", McGraw-Hill, 5th Edition, 2003.
* B.R. Munson, D.F. Young and T.H. Okiishi, "Fundamentals of Fluid Mechanics", John Wiley, 4th Edition, 2002.
* B. Massey and J. Ward-Smith, "Mechanics of Fluids", Taylor and Francis, 8th Edition, 2006.
 
== References ==
{{Reflist |refs=
<ref name="Schlicting, H.">
{{cite web
| title = Schlichting, H. (1979) ''Boundary-Layer Theory'' McGraw Hill, New York, U.S.A.
}}
</ref>
}}
 
{{DEFAULTSORT:Boundary-Layer Thickness}}
[[Category:Boundary layers]]
[[Category:Aerodynamics]]

Revision as of 19:14, 25 November 2013

This page describes some parameters used to measure the properties of boundary layers. Consider a stationary body with a turbulent flow moving around it, like the semi-infinite flat plate with air flowing over the top of the plate. At the solid walls of the body the fluid satisfies a no-slip boundary condition and has zero velocity, but as you move away from the wall, the velocity of the flow asymptotically approaches the free stream mean velocity. Therefore it is impossible to define a clear point at which the boundary layer becomes the free stream. The parameters below overcome this and allow the boundary layer to be measured.


Motivations for boundary layers

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As the Navier-Stokes equations that describe the motion of fluids are not solved in the general case, simplifying assumptions are used to describe approximate behaviour. For a fluid of low viscosity (compared to the geometrical configuration of the problem), the Reynolds number is large and the viscous term in the Navier-Stokes equation is small compared to the inertial term in much of the space. However, this is not true near the boundaries of the fluid and this description fails to capture some important behavior in a lot of real systems, for instance the Kármán vortex street or the drag force on an airplane wing.

99% Boundary Layer thickness

The boundary layer thickness, δ, is the distance across a boundary layer from the wall to a point where the flow velocity has essentially reached the 'free stream' velocity, u0. This distance is defined normal to the wall, and the point where the flow velocity is essentially that of the free stream is customarily defined as the point where:

u(y)=0.99uo

For laminar boundary layers over a flat plate, the Blasius solution gives:

δ4.91νxu0
δ4.91x/Rex

For turbulent boundary layers over a flat plate, the boundary layer thickness is given by:

δ0.382x/Rex1/5

where

Rex=ρu0x/μ
δ is the overall thickness (or height) of the boundary layer
Rex is the Reynolds Number
ρ is the density
u0 is the freestream velocity
x is the distance downstream from the start of the boundary layer
μ is the dynamic viscosity

The velocity thickness can also be referred to as the Soole ratio, although the gradient of the thickness over distance would be adversely proportional to that of velocity thickness.

Displacement thickness

The displacement thickness, δ* or δ1 is the distance by which a surface would have to be moved in the direction perpendicular to its normal vector away from the reference plane in an inviscid fluid stream of velocity u0 to give the same flow rate as occurs between the surface and the reference plane in a real fluid.[1]

In practical aerodynamics, the displacement thickness essentially modifies the shape of a body immersed in a fluid to allow an inviscid solution. It is commonly used in aerodynamics to overcome the difficulty inherent in the fact that the fluid velocity in the boundary layer approaches asymptotically to the free stream value as distance from the wall increases at any given location.

The definition of the displacement thickness for compressible flow is based on mass flow rate:

δ*=0(1ρ(y)u(y)ρ0u0)dy

The definition for incompressible flow can be based on volumetric flow rate, as the density is constant:

δ*=0(1u(y)u0)dy

Where ρ0 and u0 are the density and velocity in the 'free stream' outside the boundary layer, and y is the coordinate normal to the wall.

For boundary layer calculations, the density and velocity at the edge of the boundary layer must be used, as there is no free stream. In the equations above, ρ0 and u0 are therefore replaced with ρe and ue.

The displacement thickness is used to calculate the boundary layer's shape factor.

Momentum thickness

The momentum thickness, θ or δ2, is the distance by which a surface would have to be moved parallel to itself towards the reference plane in an inviscid fluid stream of velocity u0 to give the same total momentum as exists between the surface and the reference plane in a real fluid.[1]

The definition of the momentum thickness for compressible flow is based on mass flow rate:

θ=0ρ(y)u(y)ρ0uo(1u(y)uo)dy

The definition for incompressible flow can be based on volumetric flow rate, as the density is constant:

θ=0u(y)uo(1u(y)uo)dy

Where ρ0 and u0 are the density and velocity in the 'free stream' outside the boundary layer, and y is the coordinate normal to the wall.

For boundary layer calculations, the density and velocity at the edge of the boundary layer must be used, as there is no free stream. In the equations above, ρ0 and u0 are therefore replaced with ρe and ue.

For a flat plate at no angle of attack with a laminar boundary layer, the Blasius solution gives

θ0.664νxuo

The influence of fluid viscosity creates a wall shear stress, τw, which extracts energy from the mean flow. The boundary layer can be considered to possess a total momentum flux deficit, due to the frictional dissipation.

ρ0u(y)(uou(y))dy

Other length scales describing viscous boundary layers include the energy thickness, δ3.

Shape factor

A shape factor is used in boundary layer flow to determine the nature of the flow.

H=δ*θ

where H is the shape factor, δ* is the displacement thickness and θ is the momentum thickness. The higher the value of H, the stronger the adverse pressure gradient. A high adverse pressure gradient can greatly reduce the Reynolds number at which transition into turbulence may occur.

Conventionally, H = 2.59 (Blasius boundary layer) is typical of laminar flows, while H = 1.3 - 1.4 is typical of turbulent flows.

Further reading

  • F.M. White, "Fluid Mechanics", McGraw-Hill, 5th Edition, 2003.
  • B.R. Munson, D.F. Young and T.H. Okiishi, "Fundamentals of Fluid Mechanics", John Wiley, 4th Edition, 2002.
  • B. Massey and J. Ward-Smith, "Mechanics of Fluids", Taylor and Francis, 8th Edition, 2006.

References

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  1. 1.0 1.1 Cite error: Invalid <ref> tag; no text was provided for refs named Schlicting, H.