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The Rectangular Channel

The Rectangular Channel. Steven A. Jones BIEN 501 Friday, April 4th, 2008. The Rectangular Channel. Major Learning Objectives: Deduce boundary conditions for a 2-dimensional laminar internal flow problem. Reduce continuity and momentum for the problem.

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The Rectangular Channel

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  1. The Rectangular Channel Steven A. Jones BIEN 501 Friday, April 4th, 2008 Louisiana Tech University Ruston, LA 71272

  2. The Rectangular Channel Major Learning Objectives: • Deduce boundary conditions for a 2-dimensional laminar internal flow problem. • Reduce continuity and momentum for the problem. • Divide the momentum equation into its homogeneous and non-homogeneous components. • Transform the boundary conditions for the new momentum equation. Louisiana Tech University Ruston, LA 71272

  3. The Rectangular Channel Major Learning Objectives (continued): • Use separation of variables to deduce the form of the solutions. • Apply boundary conditions along three boundaries. • Use superposition to deduce the series form of the complete solution. • Use orthogonality (from Sturm-Liouville) to deduce the coefficients in the infinite series. Louisiana Tech University Ruston, LA 71272

  4. Rectangular Channel Look at the half-channel. z=0 is the midline of the channel. z ranges from –w/2 to +w/2 y ranges from –h/2 to +h/2 Fully Developed Flow No-Slip Boundary Conditions Louisiana Tech University Ruston, LA 71272

  5. Boundary Conditions We can write down 6 boundary conditions, (but we only need 4). Louisiana Tech University Ruston, LA 71272

  6. Navier-Stokes Equations Look at Term for Fully Developed Flow With vx = vy = 0 and no z gradients, which terms go to zero? Louisiana Tech University Ruston, LA 71272

  7. Navier-Stokes Equations All of them! Louisiana Tech University Ruston, LA 71272

  8. Continuity All terms in the continuity equation are zero. This result tells us that our assumptions are consistent with continuity. Louisiana Tech University Ruston, LA 71272

  9. y-momentum Before we look at x-momentum, look at y-momentum. With no y and z velocities, this equation tells us that the y pressure gradient is cancelled by gravity. Louisiana Tech University Ruston, LA 71272

  10. Constant Pressure Gradient We learned from the y and z momentum that pressure did not depend on y and z. So the right hand side of the above equation can only depend on x, but the left hand of the equation cannot depend on x because of the fully developed flow assumption. Therefore, cannot depend on x, y or z and must be constant. Louisiana Tech University Ruston, LA 71272

  11. Particular Solution The equation: Is non-homogeneous, meaning that the right hand side is not zero. A standard method for solving this type of equation is to first find a “particular solution” and subtract that solution from the equation to find a new homogeneous equation. It is easy to show that the solution: Satisfies the equation (hint: substitute this function back into the equation). Louisiana Tech University Ruston, LA 71272

  12. Particular Solution The function: Also satisfies the boundary conditions at . It does not satisfy the boundary conditions for so our work is not quite done yet. However, we have made progress. Louisiana Tech University Ruston, LA 71272

  13. Comments on the Particular Solution Instead of: We could have used: This solution would have reversed the roles of y and z, but the procedure would otherwise be the same. Louisiana Tech University Ruston, LA 71272

  14. Comments on Particular Solution When you have an equation like: Or something more complicated, it is generally easy to find a particular solution. Choose one of the variables, say y, and ask if there is a function f(y) that will yield a constant when differentiated an amount of times equal to the lowest order differential. Since it is not a function of z, the derivatives in z do not contribute, nor do the higher order derivatives in y (because the derivative of a constant is zero). For example, a particular solution to the above equation is Louisiana Tech University Ruston, LA 71272

  15. Exercise Find particular solutions to the following: Louisiana Tech University Ruston, LA 71272

  16. Exercise Answers Louisiana Tech University Ruston, LA 71272

  17. Complete Solution The complete solution will be of the form: Where the particular solution part will handle the nonhomogeneity in the partial differential equation and the second part, f (y, z), will satisfy the homogeneous equation and satisfy the boundary conditions. Louisiana Tech University Ruston, LA 71272

  18. Reduce the Equation Plug: These two terms cancel Into: To get: Louisiana Tech University Ruston, LA 71272

  19. Reduce the Equation (continued) We are left with Laplace’s equation: But remember so Louisiana Tech University Ruston, LA 71272

  20. Reduce the Equation (continued) If And if vx must satisfy the boundary conditions: Then f must satisfy the boundary conditions: Louisiana Tech University Ruston, LA 71272

  21. Exercise Why is each of the indicated terms below zero? Louisiana Tech University Ruston, LA 71272

  22. Exercise Answers Why is each of the indicated terms below zero? From Couette flow (plug h/2 into Vx(y)) From symmetry of Couette flow Because Vx(y) does not depend on z. Louisiana Tech University Ruston, LA 71272

  23. Summary of Equations We must therefore solve Laplace’s equation: Subject to the following boundary conditions: Louisiana Tech University Ruston, LA 71272

  24. Visual Louisiana Tech University Ruston, LA 71272

  25. Separable Solution to Homogeneous Equation Louisiana Tech University Ruston, LA 71272

  26. Solution to ODEs It may help to remember that the sin and sinh (cos and cosh) functions can be written as: Louisiana Tech University Ruston, LA 71272

  27. Solution to ODEs If And Then anything that has this form: Satisfies the homogeneous equation. Louisiana Tech University Ruston, LA 71272

  28. Superposition Since there may be multiple values of l that work, a complete solution must consider all possible such solutions. We also note that the equations are linear, so that we can add solutions and still have a solution. Thus, we can write: Louisiana Tech University Ruston, LA 71272

  29. Boundary Conditions in y First consider the boundary condition along the centerline where y = 0. Next, the boundary condition at y = h/2 requires: This equation is true for all values of z only if: (The book uses n’=2n+1) Louisiana Tech University Ruston, LA 71272

  30. Boundary Conditions in z We now have the following: But it is a lot to write, so we will continue to write it in terms of l for now. Louisiana Tech University Ruston, LA 71272

  31. Boundary Conditions in z Consider the boundary condition along the centerline where z = 0. Next, the boundary condition at z = w/2 requires: This boundary condition is the one that requires the most work. Louisiana Tech University Ruston, LA 71272

  32. Boundary Conditions in z Notice that this equation is a function of y only. It can be interpreted to mean that the right hand side is being expanded as a Fourier cosine series within the interval of interest (i.e. –h/2 < y < h/2). We use the standard approach that was used to derive Fourier series. Louisiana Tech University Ruston, LA 71272

  33. Orthogonal Expansion Multiply both sides of the equation by cos (lm y ). Integrate from –h/2 to h/2 Louisiana Tech University Ruston, LA 71272

  34. Orthogonality The left hand side will be zero for alllm except ln = lm so: Note that the sum disappeared because only the value of n that is equal to m is needed. Louisiana Tech University Ruston, LA 71272

  35. Orthogonality But So Or Louisiana Tech University Ruston, LA 71272

  36. Integrating Cosine Squared The area of the rectangle is h. The area under cos2 is h/2. Louisiana Tech University Ruston, LA 71272

  37. Orthogonality So The final integral can be obtained with integration by parts (twice). Louisiana Tech University Ruston, LA 71272

  38. Derived Information The final form of the solution is: We can obtain the shear stress from the stress tensor. Louisiana Tech University Ruston, LA 71272

  39. The Stress Tensor For fluids: The shear stress has 4 non-zero components. Louisiana Tech University Ruston, LA 71272

  40. Shear Stress, Bottom Surface Along the bottom surface, we are concerned only with txy. Louisiana Tech University Ruston, LA 71272

  41. Shear Stress, Bottom Surface Louisiana Tech University Ruston, LA 71272

  42. Relationship of Flow Rate to Pressure Gradient To obtain flow rate in terms of pressure gradient, we must integrate the velocity over the cross-section. This relationship could be used, for example, to determine how much pressure is required to drive blood through a microchannel device at a given flow rate. Louisiana Tech University Ruston, LA 71272

  43. Example You are interested in designing a microdevice that samples blood from a vein and causes it to flow with a shear rate of 15 dynes/cm2 over a microchannel that is coated with fibrinogen. The pressure difference driving the flow is the venous pressure. If you use a vacuum container at the downstream end of the device, can you obtain the required shear stress, and if so, what should be the dimensions of the channel? Louisiana Tech University Ruston, LA 71272

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