Krogh Cylinder

Krogh Cylinder Steven A. Jones BIEN 501 Friday, April 20, 2007 Louisiana Tech University Ruston, LA 71272

Energy Balance Major Learning Objectives: • Learn a simple model of capillary transport. Louisiana Tech University Ruston, LA 71272

The Krogh Cylinder Louisiana Tech University Ruston, LA 71272

Assumptions • The geometry follows the Krogh cylinder configuration • Reactions are continuously distributed • There is a radial location at which there is no flux Louisiana Tech University Ruston, LA 71272

Capillary Transport Consider the following simple model for capillary transport: Capillary Interior Reactive Tissue Matrix Louisiana Tech University Ruston, LA 71272

Capillary Transport What are appropriate reaction rates and boundary conditions? Constant rate of consumption (determined by tissue metabolism, not O2 concentration No reaction Louisiana Tech University Ruston, LA 71272

Diffusion Equation For steady state: Louisiana Tech University Ruston, LA 71272

Constant Rate of Reaction Assume the rate of reaction, rx, is constant: (M will be numerially negative since the substance is being consumed). And that the concentration is constant at the capillary wall and zero at the edge of the Krogh cylinder Louisiana Tech University Ruston, LA 71272

Constant Rate of Reaction Because there is only one independent variable: (Note the change from partial to total derivative) Integrate once: Divide by r and integrate again: Louisiana Tech University Ruston, LA 71272

Constant Rate of Reaction Because there is only one independent variable, : Integrate once: Write in terms of flux: Louisiana Tech University Ruston, LA 71272

Flux Boundary Condition at Rk Since flux is 0 at the edge of the cylinder (Rk), Substitute back into the differential equation: Louisiana Tech University Ruston, LA 71272

Solution for Concentration Substitute back into the differential equation: Divide by r: Integrate: Louisiana Tech University Ruston, LA 71272

Boundary Condition at Capillary Wall From the problem statement (Slide 9) cc(Rc) = c0 b Louisiana Tech University Ruston, LA 71272

Simplify Combine like terms and recalling that : Or, in terms of partial pressures: Louisiana Tech University Ruston, LA 71272

Plot of the Solution Louisiana Tech University Ruston, LA 71272

Plot of the Solution Note that the solution is not valid beyond rk. Louisiana Tech University Ruston, LA 71272

Non Steady State Diffusion equation: Initial Condition: Boundary Conditions: Louisiana Tech University Ruston, LA 71272

Homogeneous Boundary Conditions The problem will be easier to solve if we can make the boundary conditions homogeneous, i.e. of the form: Our boundary condition at r = rc is not homogeneous because it is in the form: Louisiana Tech University Ruston, LA 71272

Homogeneous Boundary Conditions However, if we define the following new variable: The boundary condition at rc becomes: And the boundary condition at rk is still homogeneous: Louisiana Tech University Ruston, LA 71272

Non-Dimensionalization The new concentration variable also has the advantage of being dimensionless. We can non-dimensionalize the rest of the problem as follows: Let: The boundary conditions become: The initial condition becomes: Louisiana Tech University Ruston, LA 71272

Non-Dimensionalization The diffusion equation can now be non-dimensionalized: Use: So that: Louisiana Tech University Ruston, LA 71272

Non-Dimensionalization (Continued) Use: To determine that: Louisiana Tech University Ruston, LA 71272

Non-Dimensionalization (Continued) Now apply: To: To get: Louisiana Tech University Ruston, LA 71272

Non-Dimensionalization (Cont) Simplify Multiply by : Louisiana Tech University Ruston, LA 71272

Non-Dimensionalization (Cont) Examine The term on the right hand side must be non-dimensional because the left hand side of the equation is non-dimensional. Thus, we have found the correct non-dimensionalization for the reaction rate. Louisiana Tech University Ruston, LA 71272

The Mathematical Problem The problem reduces mathematically to: Differential Equation Boundary Conditions Initial Condition Louisiana Tech University Ruston, LA 71272

Change to Homogeneous Follow the approach of section 3.4.1 (rectangular channel) to change the non-homogeneous equation to a homogeneous equation and a simpler non-homogeneous equation. Diffusion equation: Let: Then: Louisiana Tech University Ruston, LA 71272

Divide the Equation The equation is solved if we solve both of the following equations: In other words, we look for a time-dependent part and a time independent (steady state) solution. Note that since the reaction term does not depend on time, it can be satisfied completely by the time-independent term. Louisiana Tech University Ruston, LA 71272

Solution to the Spatial Part We already know that the solution to: Is: And that this form satisfies the boundary conditions at rc and rk. It will do so for all time (because it does not depend on time). Louisiana Tech University Ruston, LA 71272

Non-Dimensionalize the Spatial Part In terms of the non-dimensional variables: And this form also becomes zero at the two boundaries. Louisiana Tech University Ruston, LA 71272

Transient Part We therefore require that: With Boundary Conditions And the Initial Condition Louisiana Tech University Ruston, LA 71272

Boundary conditions Recall what we did: And that: Initial Condition: Boundary Conditions: Louisiana Tech University Ruston, LA 71272

Boundary conditions for g Initial Condition: Boundary Conditions: c0 0 Louisiana Tech University Ruston, LA 71272

It follows that we must solve The equation is solved if we solve both of the following equations: With the following initial/boundary conditions: Louisiana Tech University Ruston, LA 71272

Separation of Variables Homogeneous diffusion equation: Louisiana Tech University Ruston, LA 71272

The Two ODEs Solutions: What does this equation remind you of? Louisiana Tech University Ruston, LA 71272

Radial Dependence Could it perhaps be a zero-order Bessel Function? Louisiana Tech University Ruston, LA 71272

Radial Dependence Louisiana Tech University Ruston, LA 71272

Radial Dependence So since: Note: When we used Bessel’s equation in Womersley flow, we did not use the Y0 term because it goes to At z=0. However, in this case, we do not need to go to r=0, so we will keep it in the solution. Louisiana Tech University Ruston, LA 71272

Flux Boundary Condition In the solution we will have terms like: We will be requiring the gradient of these terms to go to zero at rk. I.e. The only way these terms can go to zero for all t is if: For every value of s. Louisiana Tech University Ruston, LA 71272

Relationship between A and B In other words: In contrast to problems we have seen before, in which the separation variable could take on only discrete values, here we can satisfy the boundary condition for any value of s. Louisiana Tech University Ruston, LA 71272

Bessel Functions Louisiana Tech University Ruston, LA 71272

s = 0 We must also consider the case for s = 0. But this expression is already a part of the steady state solution. Louisiana Tech University Ruston, LA 71272

Complete Solution If s could take on only discrete values, the complete solution would be: Louisiana Tech University Ruston, LA 71272

Complete Solution However, since s can take on any value, the complete solution must be: Louisiana Tech University Ruston, LA 71272

Complete Solution And since: Louisiana Tech University Ruston, LA 71272

Initial Condition The initial condition is: Louisiana Tech University Ruston, LA 71272

Boundary Condition at r = rc Louisiana Tech University Ruston, LA 71272

Krogh Cylinder

Krogh Cylinder

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