Chapter 9. Flow over Immersed Bodies
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1 Chapter 9 Flow over Immersed Bodies
2 We consider flows over bodies that are immersed in a fluid and the flows are termed external flows. We are interested in the fluid force (lift and drag) over the bodies. For example, correct design of cars, trucks, ships, and airplanes, etc. can greatly decrease the fuel consumption and improve the handling characteristics of the vehicle.
3 9.1 General External Flow Characteristics A body immersed in a moving fluid experiences a resultant force due to the interaction between the body and the fluid surrounding it. Object and flow relation: stationary air with moving object or flowing air with stationary object Flow classification: Figure 9. Flow classification: (a) two-dimensional, (b) axisymmetric, (c) three-dimensional. Body shape: Streamlined bodies or blunt bodies
4 9.1.1 Lift and Drag Concepts When any body moves through a fluid, an interaction between the body and the fluid occurs This can be described in terms of the stresses-wall shear stresses due to viscous effect and normal stresses due to the pressure P Drag, D the resultant force in the direction of the upstream velocity Lift, L the resultant force normal to the upstream velocity
5 Resultant force--lift and drag Resultant force df = ( pda)cos θ + ( τ da)sinθ x and df = ( pda)sin θ + ( τ da)cosθ The net x and y components of the force on the object are, x w y D= df = pcos da+ τ sinθda L = df = psinθda + τ cos da Nondimensional lift coeff. C L and drag coeff. C D C w y L D =, CD = A: charateristic area, frontal area or 1 ρu A 1 ρu A planform area? L Note: When C D or C L =1, then D or L equals the dynamic pressure on A. w w
6 Velocity and pressure distribution around an air foil (From S.R. Turns, Thermal-Fluid Sciences, Cambridge Univ. Press, 006)
7 Drag and lift due to pressure and friction: example of an air foil (From S.R. Turns, Thermal-Fluid Sciences, Cambridge Univ. Press, 006)
8 9.1. Characteristics of Flow Past an Object For typical external flows the most important of parameters are the Reynolds number Re = ρul μ the Mach number Ma = U c the Froude number, for flow with a free surface Fr = U gl Flows with Re>100 are dominated by inertia effects, whereas flows with Re<1 are dominated by viscous effects.
9 Flow past a flat plate (streamlined body) Figure 9.5 Character of the steady, viscous flow past a flat plate parallel to the upstream velocity: (a) low Reynolds number flow, (b) moderate Reynolds number flow, (c) large Reynolds number flow.
10 Steady flow past a circular cylinder (blunt body) The velocity gradients within the boundary layer and wake regions are much larger than those in the remainder of the flow fluid. Therefore, viscous effects are confined to the boundary layer and wake regions. V9. Streamlined and blunt bodies
11 9. Boundary Layer Characteristics 9..1 Boundary Layer Structure and Thickness on a Flat Plate Figure 9.7 Distortion of a fluid particle as it flows within the boundary layer. Boundary layer thickness, δ δ =y where u=0.99u
12 Boundary Layer Structure and Thickness on a Flat Plate Transition occurs at ρux Rexcr = = 10 ~ 3 10 μ 5 6 depending on surface roughness and amount of turbulence in upstream flow Figure 9.9 Typical characteristics of boundary layer thickness and wall shear stress for laminar and turbulent boundary layers. V9.3 Laminar boundary layer V9.4 Laminar/turbulent transition
13 Figure 9.8 (p. 47) Boundary layer thickness: (a) standard boundary layer thickness, (b) boundary layer displacement thickness. Boundary layer displacement thickness 0 0 u = 1 U ( ) * δ bu = U u bdy * δ or δ dy (9.3)
14 Boundary layer displacement thickness Represents the amount that the thickness of the body must be increased so that the fictitious uniform inviscid flow has the same mass flow rate properties as the actual viscous flow. It represents the outward displacement of the streamlines caused by the viscous effects on the plate. Ex 9.3 Determine the velocity U=U(x) of the air within the duct * 1 but outside of the boundary layer with δ = 0.004( x)
15 Boundary layer momentum thickness Boundary layer momentum thickness θ ( ) = ( ) = ρuu uda ρb uu udy ρbuθ u u θ = 1 dy U U 0 0 (9.4)
16 9.. Prandtl/Blasius Boundary Layer Solution The Navier-Stokes equations are too complicated that no analytical solution is available. However, for large Re, simplified boundary layer equations can be derived. -D Navier-Stokes Equations u + v = + ν + x y ρ x x y u u 1 p u u 1 u + v = + ν + x y ρ y x y u v + = 0 x y v v p v v Elliptic equation (9.5) (9.6)
17 Boundary layer assumption The boundary layer assumption is based on the fact that the boundary layer is thin. δ << x so that v<< u and << x Thus the equations become, u x v + = y 0 u u p u 1 u + v = + ν x y ρ x y y parabolic equation Detailed derivation is given in Cengel & Cimbala, Fluid Mechanics, 006, pp (9.8) (9.9) Physically, the flow is parallel to the plate and any fluid is convected downstream much more quickly than it is diffused across the streamlines. For boundary layer flow over a flat plate the pressure is constant. The flow represents a balance between viscous and inertial effects, with pressure playing no role.
18 Boundary conditions BCs: u = v= 0, y = 0 u U, y u y It can be argued that the velocity profile should be similar = g U δ In addition, order of magnitude analysis leads to: u u u uu u ν u + v = ν, ~ x y y x δ, δ νx ~, δ ~ U νx U 1
19 Similarity variables Define the dimensionless similarity variable 1 U y η = y ~, νx δ and stream function 1 ( xu ) f ( ) f ( ) ψ = ν η where η is an unknown function Thus 1 ψ 1 ( ) U u = = νxu f ( η) = Uf ( η) y ν x 1 ψ νu v ( η f f ) where ( ) d = = = x 4x dη Then the parabolic equation (9.9) becomes f + ff = 0 with the boundary conditions f(0) = f (0) = 0 at = 0, f ( ) 1 as η η (9.14a) (9.14b)
20 Blasius solutions u = f ( η ) U u from the numerical solution 0.99 η = 5.0 (Table 9.1) U 1 U η = 5 = δ, δ = 5 ν x δ 5 or = Rex = x Re x ν x U Ux ν HW: Derive (9.14&9.18) and solve using Matlab to get Table 9.1
21 Blasius solution Figure 9.10 Blasius boundary layer profile: (a) boundary layer profile in dimensionless form using the similarity variable ŋ. (b) similar boundary layer profiles at different locations along the flat plate.
22 Blasius solution displacement thickness: from (9.3) momentum thickness: from (9.4) boundary layer Shear stress: τ w u = μ = y y= U 3 ρμ x * δ = x θ = x 1.71 Re Re x x (9.16) (9.17) (9.18) Note: For fully developed pipe flow shear stress, τ U (why?) w
23 9..3 Momentum-Integral Boundary Layer Equation for a Flat Plate One of the important aspects of boundary layer theory is the determination of the drag caused by shear forces on a body. Consider a uniform flow past a flat plate Figure 9.11 Control volume used in the derivation of the momentum integral equation for boundary layer flow.
24 x-component of momentum equation: uv v uv v F = ρ uv nda+ ρ uv nda x (1) () F = D= τ da= b τ dx x w w plate plate δ D U U da u da D U bh b u dy = ρ ( ) + ρ = ρ ρ (1) () 0 δ δ δ or Since Uh = udy, ρu bh = ρbu udy = ρb Uudy δ δ δ δ D = ρubh ρbudu= ρbuudy ρb u dy = ρb u( U u) dy δ u u dd dθ D= ρbu (1 ) dy = ρbu θ, and = ρbu U U dx dx 0 The increase in drag per length of the plate occurs at the expense of an increase of the momentum boundary layer thickness, which represents a decrease in the momentum of the fluid. dd QdD bdx b U dx dθ dx = τw = τw τw = ρ momentum integral equation by von Karman
25 Momentum integral equation dθ τw ρu dx = momentum integral equation If we know the velocity distributions, we can obtain drag or shear stress. The accuracy of these results depends on how closely the shape of the assumed velocity profile approximates the actual profile. Example 9.4 Uy u = 0 y δ u = U y > δ δ dθ τw = ρu dx U τw = μ δ
26 u u u u θ = 1 dy = 1 dy U U U U 0 0 δ 1 3 y y y y δ = 1 dy = δ ( y y ) dy = δ = δ δ U U d μ ρ δ 6μ =, δdδ = dx δ 6 dx ρu 6 1 = x δ = ρu ρu δ μ μ δ x μx δ μ or δ = 3.46 compare with Blasius solution = 5 ρu x ρux δ μ = 3.46 x ρux δ μx θ = = ρu 3 3 dθ ρμ ρμ τw = ρu = 0.89 U τw = 0.33U dx x x 1
27 Figure 9.1 Typical approximate boundary layer profiles used in the momentum integral equation.
28 Momentum integral equation for general profile of u/u u u y Let = gy ( ) for 0 Y 1, = 1 for Y> 1, where Y= U U δ B.C.: g(0) = 0, g(1) = 1 τ μ CC cf = = CC = c = ρu C δ 1 u u D= ρbu (1 ) dy = ρbu δ g( Y)[1 g( Y)] dy = ρbu δc U U τ w 0 0 u μu dg μu = μ = = C y δ dy δ y= 0 Y = 0 we can obtain that δ C / C1 δ 5 = ( Blasius solution: = ) x Re x Re τ w x μ = = δ CC ρμ U 3 C 1 U x w 1 1 (Blasius solution: f ) 1 ρux Rex Rex l b wdx D τ f CC 0 1 ρul Df l CDf μ l x = = =, where Re = (Blasius solution: = ) 1 1 ρubl ρubl Re Rel C = g( Y)[1 g( Y)] dy C = 0 dg dy Y = 0
29 9..4 Transition from Laminar to Turbulent Flow The analytical results are restricted to laminar boundary layer along a flat plate with zero pressure gradient. Transition to turbulent boundary layer occurs at Rex = ,cr 5 6 Example 9.5 Boundary layer transition Figure 9.9 Typical characteristics of boundary layer thickness and wall shear stress for laminar and turbulent boundary layers.
30 Figure 9.13 (p. 483) Turbulent spots and the transition from laminar to turbulent boundary layer flow on a flat plate. Flow from left to right. (Photograph courtesy of B. Cantwell, Stanford University. V9.5 Transition on flat plate Figure 9.14 (p. 484) Typical boundary layer profiles on a flat plate for laminar, transitional, and turbulent flow (Ref. 1).
31 9..5 Turbulent Boundary Layer Flow The structure of turbulent boundary layer flow is very complex, random, and irregular, with significant cross-stream mixing. Empirical power-law velocity profile is a reasonable approximation. Example 9.6 To begin with the momentum integral equaion: dθ τw = ρu dx 1 7 y u y 1 7 Y =, Y < 1 Assume = = Y δ U δ u = U, Y > 1 and the experimentally determined formula: τ w 1 4 ν = 0.05ρU U δ (1)
32 τ w = ρu dθ dx ( ) u u u u θ = 1 dy = δ 1 dy = δ Y 1 Y dy = δ U U U U 7 where δ is still unknown. To determine δ, we combine Eq. 1 with Eq. to get the ODE: () 1 4 ν 7 dδ 0.05 ρu = ρu Uδ 7 dx with BC: δ = 0 at x = 0, we obtain ν δ δ = x, or = U x Re x 1 or 4 ν δ dδ = 0.31 U dx * u u δ ν δ ν * θ = = x, θ < δ < δ ( ) δ = 1 dy = δ 1 dy = δ 1 Y dy = = x U U 8 U 7 U
33 τ w 1 4 ν 0.088ρU = 0.05ρU = U0.37 ( ν / U) x Rex 1 l l 5 ν τw ρ ρ Ux 0 0 A D f = b dx = b0.088 U dx = U, A = bl 1 Re 5 Df 0.07 CDf = = 1 1 ρu A Re 5 l Note: The above results are valid for smooth flat plates with 5 10 <Re < x l Turbulent B.L.: δ x, Laminar B.L.: δ x, τw x 1 1 τw x
34 Friction drag coefficient for a flat plate Although Fig is similar with Moody diagram (pipe flow) of Fig. 8.3, the mechanisms are quite different. For fully developed pipe flow, fluid inertia remains constant and the flow is balanced between pressure forces and viscous forces. For flat plate boundary layer flow, pressure remains constant and the flow is balanced between inertia effects and viscous forces. Figure 9.15 Friction drag coefficient for a flat plate parallel to the upstream flow.
35 Empirical equations for C Df Example 9.7
36 9..6 Effects of Pressure Gradient Inviscid flow over a cylinder
37 Viscous flow over a cylinder Viscous flow
38 Viscous flow over cylinder: velocity-pressure Separated flow No matter how small the viscosity, provided it is not zero, there will be a boundary layer that separates from the surface, giving a drag that is, for the most part, independent of the value of μ.
39 9..7 Momentum-Integral Boundary Layer Equation with Nonzero Pressure Gradient Outside the boundary layer ρu fs p + = constant dp du fs = ρufs dx dx Momentum integral boundary layer equation (9.34) d du ( ) * fs dθ τw = ρ U fs θ + ρδ U fs (for U = C, τw = ρu ) (9.35) dx dx dx This equation represents a balance between viscous forces ( τ ), pressure forces( dp du fs w = ρu ), and the fluid fs momentum( θ ). dx dx Eq can be used to provide information about the boundary layer thickness, wall shear stress, etc,
40 Derivation of equation (9.35) u v + = 0 (a) x y u u U 1 τ u + v = U + x y x ρ y (b)- ( u U) (a) (b) 1 τ U = + + ρ y x x y ( uu u ) ( U u) ( vu vu) δ δ δ δ 1 τ U dy = u( U u) dy + ( U u) dy + ( vu vu) dy ρ y x x y δ δ δ 1 τ U dy= uu ( udy ) + ( U udy ) ρ y x x δ τ U = uu ( udy ) + ( U udy ) ρ x x 0 0 = + x U U x U 0 0 * U = ( U θ) + Uδ x x δ δ δ u u U u U 1 dy U 1 dy v=0 at y=0,δ (9.35)
41 9.3 Drag Any object moving through a fluid will experience a drag D -- a net force in the direction of flow due to pressure (pressure drag) and shear stress (friction drag) on the surface of the object. Drag coefficient: D C = = shape, Re, Ma, Fr, / l D 1 ( ) ρu A φ ε These are determined experimentally, and very few can be obtained analytically.
42 9.3.1 Friction Drag Drag due to the shear stress τ w, on the object. For large Re, the friction drag is generally smaller than pressure drag. However, for highly streamlined bodies or for low Reynolds number flow, most of the drag may be due to friction drag. Drag on a plate of width b and length l 1 Df = ρu blcdf where C is the friction drag coefficient. Df L b
43 Friction Drag ε For laminar flow, CDf is independent of D ε For turbulent flow, CDf is function of D C along the surface of a curved body is Df quite difficult to obtain Example 9.8 Friction drag coeff. for a cylinder
44 9.3. Pressure Drag Drag due to pressure on the object. Pressure drag also called form drag because of its strong dependency on the shape or form of the object. D = p da C = C p Dp p 1 0 cos θ p : pressure coefficient D pcosθda Cp cosθda p = = = 1 1 ρu A ρu A A p ρu p 0 : reference pressure
45 Pressure drag--large Reynolds number For large Reynolds number, inertial effect 1 p p0 ρu D = p θda C = p ( viscous effect) ( dynamic pressure) 0 cos p : pressure coefficient D pcosθda Cp cosθda p CDp = = = 1 1 ρu A ρu A A Therefore, C is independent of Reynolds number, C Dp p p ρu p / ( ) is also independent of Reynolds number Re 1
46 Pressure drag--low Reynolds number For very small Reynolds number inertial effect U p μ l U τw μ l ( viscous stress) C Dp ( viscous effect) D U μ l p = 1 1 ρul Re ρu A ρu μ 1 Comparisons: 1 For laminar pipe flow f Re For large Reynolds number f constant ( pipe flow) Example 9.9 Pressure drag coeff. for a cylinder
47 Viscosity Dependence Inviscid, Viscous flows over object For μ = 0, the pressure drag on any shaped object (symmetrical or not) in a steady flow would be zero. For μ 0, the net pressure drag may be non-zero because of boundary layer separation.
48 9.3.3 Drag Coefficient Data and Examples C D ε = φ shape, Re, Ma, Fr, l Shape Dependence Figure 9.0 Two objects of considerably different size that have the same drag force: (a) circular cylinder C D = 1.; (b) streamlined strut C D = 0.1.
49 Shape Dependence Figure 9.19 Drag coefficient for an ellipse with the characteristic area either the frontal area, A = bd, or the planform area, A = bl (Ref. 5).
50 Reynolds Number Dependence Low Reynolds number, Re<1 viscous force pressure force D= f( U, l, μ) From dimensional analysis D [ ( / ) ] D= CμlU = C μu l l C D CμlU C ρul = = =, Re = 1 ρul ρul Re μ Note: For Re<1, streamlining increases the drag due to an increase in the area on which shear force act.
51 Ex 9.10: particle in the water dragged up by upward motion D= 0.1 mm, SG =.3, to determine U W = D+ F B π π W γ SGγ D F γ γ D CD = ( For Re < 1) Re 3 3 = sand = H O, B = H O = H O, 1 π 1 π 4 D= ρhou D C 3 D= ρhou D = πμ HOUD 4 4 ρhoud / μ HO π π SGγ D = 3πμ UD + γ D 6 6 γ = ρg U 3 3 HO HO HO ( SGρHO ρho) = = 18μ gd V9.7 Skydiving practice For 15.6 C, ρho= 999 kg, μ = m ρud Re = = ( Re < 1) μ 3 m s NS m 3 3 HO
52 Moderate Reynolds Number C D of cylinder and sphere 3 1/ Re < 10 CD Re [Re, CD (not D)] < Re < 10 CD constant
53 Flow over cylinder at various Reynolds number Re < 1, no separation Re 10, steady separation bubble Re 100, vortex shedding starts at Re 47 V9.8 Karman vortex street
54 Flow over cylinder at various Reynolds number 4 Re Re 4 10 from M. Van Dyke, An Album of Fluid Motion
55 Laminar and Turbulent Boundary Layer Separation from M. Van Dyke, An Album of Fluid Motion
56 Drag of streamlined and blunt bodies Drag coefficients The different relations of C D with Re for objects with various streamlining are illustrated in Fig. 9.. For streamlined bodies, C D when the boundary layer becomes turbulent. For blunt objects, C D when the boundary layer becomes turbulent. Note: In a portion of the range 10 5 <Re<10 6, the actual drag (not just C D ) decreases with increasing speed. V9.9 Oscillating sign V9.10 Flow past a flat plate V9.11 Flow past an ellipse
57 Example 9.11 Terminal velocity of a falling object W = D+ F B W = γ V, F = γ V ice B air 1 π ρ U D C = W F 4 γ γ W F air D B ice air B 1 π ρairu D CD = W = γicev 4 U 4 ρice gd = 3 ρair CD 1
58 Compressibility Effects When the compressibility effects become important = φ(re, Ma) CD Notes: 1. Compressibility effect is negligible for Ma<0.5.. C D increases dramatically near Ma=1, due to the existence of shock wave.
59 Surface Roughness Effects Surface roughness influences drag when the boundary layer is turbulent, because it protrudes through the laminar sublayer and alters the wall shear stress. In addition, surface roughness can alter the transitional critical Re and change the net drag. In general, ε Streamlines bodies: CD D ε Blunt bodies: CD constant (pressure drag) D until transition to turbulence occurs and the wake region becomes considerably narrower so that the pressure drag drops. (Fig. 9.5)
60 Surface Roughness 5 A well-hit golf ball has Re of O(10 ), and the dimpled golf ball has a critical Reynolds number dimples reduce 4 Table tennis Reynolds number is less than 4 10 no need of dimples Example 9.1 Effect of Surface Roughness for golf ball and table tennis ball C D dimpled C C D,rough D,smooth 0.5 = =
61 Froude Number Effects (flows with free surface) When the free surface is present, the wave-making effects becomes important, so that = φ(re, Fr) CD Figure 9.6 (p. 507) Typical drag coefficient data as a function of Froude number and hull characteristics for that portion of the drag due to the generation of waves.
62 Composite body drag Approximate drag calculations for a complex body by treating it as composite collection of its various parts. e.g., drag on an airplane or an automobile. The contributions of the drag due to various portions of car (i.e., front end, windshield, roof, rear end, etc.) have been determined. As a result it is possible to predict the aerodynamic drag on cars of a wide variety ouf body styles (Fig. 9.7). V9.14 Automobile streamlining Example 9.13 Drag on a composite body
63 9.4 Lift (L) Surface Pressure Distribution Lift -- a force that is normal to the free stream. For aircraft, L For car, L for better traction and cornering ability C L L ε =, CL = φ shape, Re, Ma, Fr, 1 ρu A l Froude no. free surface present ε is relatively unimportant Ma is important for Ma > 0.8 Re effect is not great The most important parameter that affects the lift coefficient is the shape of the object.
64 Surface Pressure Distribution Common lift-generating devices (airfoils, fans, ) operate at large Re. Most of the lift comes from the surface pressure distribution. For Re<1, viscous effect and pressure are equally important to the lift (for minute insects and the swimming of microscopic organisms). Figure 9.31 Pressure distribution on the surface of an automobile. Example 9.14 Lift from pressure and shear distributions
65 Airfoil For airfoils, the characteristic area A is the planform area in the definition of both C L and C D. For a rectangular planform wing, A=bc, where c is the chord length, b is the length of the airfoil. Typical C L ~O(1), i.e., L~(ρU /)A, and the wing loading L/A~(ρU )/: Wright Flyer: 1.5 lb / Boeing 747: 150 lb / Aspect ratio A = b /A (=b/c if c is constant) In general, A C, C Large A : long wing, soaring airplane, albatross, etc. Small A : short wing, highly maneuverable fighter, falcon L D ft ft
66 Lift and drag coefficient data as a function of angle of attack and aspect ratio Figure 9.33 Typical lift and drag coefficient data as a function of angle of attack and the aspect ratio of the airfoil: (a) lift coefficient, (b) drag coefficient.
67 Ratio of lift to drag/lift-drag polar V9.15 Stalled airfoil Although viscous effects contributes little to the direct generation of lift, viscosity-induced boundary layer separation can occur when α is too large to lead to stall.
68 From Cengel and Cimbala, Fluid Mechanics, McGraw Hill, 006 Lift of airfoil with flap Lift can be increased by adding flap V9.17 Trailing edge flap V9.18 Leading edge flap Ex Figure 9.35 Typical lift and drag alterations possible with the use of various types of flap designs (Ref. 1).
69 9.4. Circulation -D symmetric air foil Kutta condition The flow over both the topside and the underside join up at the trailing edge and leave the airfoil travelling parallel to one another. --by inviscid theory --adding circulation Note: The circulation needed is a function of airfoil size and shape and can be calculated from potential flow theory. (Section 6.6.3) L= -ρuγ (Kutta Joukowski Law)
70 From Cengel and Cimbala, Fluid Mechanics, McGraw Hill, 006
71 Circulation Flow past finite length wing Figure 9.37 (p. 546) Flow past a finite length wing: (a) the horseshoe vortex system produced by the bound vortex and the trailing vortices: (b) the leakage of air around the wing tips produces the trailing vortices. V4.6 Flow past a wing V9.19 Wing tip vortex Vee-formation of bird -- 5 birds fly 70% farther than 1 bird
72 Circulation Flow past a circular cylinder A rotating cylinder in a stationary real fluid can produce circulation and generate a lift Magnus effect EXAMPLE 9.16 Lift on a rotating table tennis ball Figure 9.38 Inviscid flow past a circular cylinder: (a) uniform upstream flow without circulation. (b) free vortex at the center of the cylinder, (c) combination of free vortex and uniform flow past a circular cylinder giving nonsymmetric flow and a lift.
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