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Scales of Motion, Reynolds averaging September 22.

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Presentation on theme: "Scales of Motion, Reynolds averaging September 22."— Presentation transcript:

1 Scales of Motion, Reynolds averaging September 22

2 Recall the momentum equation for a fluid: F x is a frictional forcer per unit mass This includes all friction, including winds

3 Figure 8.1 in Stewart

4 Frictional Stresses Internal stress (frictional stress) Internal stress (frictional stress) Molecular friction stress related to velocity shear Molecular friction stress related to velocity shear Molecular Viscosity

5 del square Kinematic molecular viscosity

6 u y x constant stress, no acceleration in fluid u y x changing stress, acceleration of fluid “curvature of velocity field”

7 For an incompressible fluid, the frictional force per unit mass takes the form:

8 Turbulence Turbulence comes from the non-linear terms in the momentum equations Turbulence comes from the non-linear terms in the momentum equations localadvective, non-linear

9 Reynolds Number Reynolds Number R e, is the ratio of the non-linear terms to the viscous terms Reynolds Number R e, is the ratio of the non-linear terms to the viscous terms U: typical velocity scale u and ∂u ≈ U L: typical distance scale ∂x ≈ L

10 U L Pipe flow U = average velocity in center L = radius of pipe -Flow is not turbulent (non-linear terms are not important) if R e <1000 in pipes

11 Turbulence In more complicated flows, non-linear terms are important when R e ≈ 1 or larger In more complicated flows, non-linear terms are important when R e ≈ 1 or larger Flows become fully turbulent if R e >10 5 Flows become fully turbulent if R e >10 5 Gulf Stream: U~1 m/s L~100 km Gulf Stream: U~1 m/s L~100 km ν≈10 -6 m 2 s -1 R e ≈10 11 => turbulent ν≈10 -6 m 2 s -1 R e ≈10 11 => turbulent flow flow Non-linear effects are strong compared to molecular friction Non-linear effects are strong compared to molecular friction In open ocean, molecular friction is usually ignored! Turbulent (non-linear) terms are the important ones! In open ocean, molecular friction is usually ignored! Turbulent (non-linear) terms are the important ones! Turbulent fluctuations act like molecular friction – dissipate (redistribute) energy and other properties Turbulent fluctuations act like molecular friction – dissipate (redistribute) energy and other properties

12 Turbulent stresses mean over some period “eddy”

13 by definition

14 Non-linear terms in the momentum equation can be written as:

15 Using the previous equation, the continuity equation splits into two equations The x-component of the of the momentum equation becomes

16 At large Reynolds number,  is very small compared to other terms. The addition force per unit mass due to turbulence is: Reynolds Stresses

17 we assume turbulence acts like molecular viscocity: kinematic eddy viscosity

18 assume that A z is either constant or that it varies more slowly in the z direction than ∂ū/∂z. Similar for horizontal components but A z is much less than A x,y =A H

19 Figure 8.4 in Stewart The buoyancy force acting on the displaced parcel is: ‘

20 The acceleration of the displaced parcel is:

21 Stability Equation Stability is defined such that: E > 0 stable E = 0 neutral stability E < 0 unstable Influence of stability is expressed by a stability frequency N (also known as Brunt-Vaisala frequency):

22 Figure 8.6 in Stewart

23 Figure 8.7 in Stewart

24 Richardson Number The relative importance of static stability and dynamic instability is expressed by the Richardson Number: The relative importance of static stability and dynamic instability is expressed by the Richardson Number: R i > 0.25 Stable Ri < 0.25 Velocity shear enhances turbulence


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