Maximizing Courant Number in VOF CFD Multiphase Simulation | Tips & Tricks"

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In summary: You may need to change the mesh type in FLUENT to a finer mesh in order to capture the blades in your model.
  • #1
vaibhavkhare
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I am using VOF model for simulating..but within 1 or 2 time step courant number reach its limit and iteration stops..i reduced the time step size from 1 to 0.05 but there is no result of it..and i have to simulate it for around 1hour..
how can it be possible to increase courant number..or what is its concept..
 
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  • #2
You'll need to provide much more information than that in order for anyone to be able to help you, I'm afraid. What software package are you using? Can you provide some details about the mesh / BC's? After you one hour of simulation (which, I would add, isn't much time at all in terms of CFD simulations) what is your Courant number doing?

Recall that the Courant number is defined as

[itex]C_0=\frac{\delta t \left|U\right|}{\delta x}[/itex]

and what you need to do is keep the maximum Courant number below unity for each time step for every cell in your mesh.
 
  • #3
ohkk..i am using FLUENT 6.3 for simulation and GAMBIT 2.4 for meshing and drawing.
i am working on a close box which is 40% filled with water and heated from bottom.. There is 1 pressure outlet on the upper side of box and no flowing situation of air or water. By using VOF multiphase model i want to do simulation on it.
The meshing type of model is HEX.
i am using turbulence model also for simulating the flow of mixture.
The simulation is not working for 1 hour..it ends only after 2-3 sec with a error that the courant number in excceded its maximum limit.. I reduced the time step size but there is no effect on that.
 
  • #4
I would start with a vof tutorial case and then modify it in steps until it matches your problem. You will then have a working problem as a starting case.

Note that some vof problems require very small time steps. in one of the fluent tutorials I have checked, the time step was 1e-8.
 
  • #5
hello ...i am trying to perform CFD analysis of a simple savonius wind turbine .made a CAd model in solid edge.have made the mesh in gambit and imported it to FLUENT for analysis..there is a problem.fluent is NOT analysing the blades.it is skipping it.

solution?
 

FAQ: Maximizing Courant Number in VOF CFD Multiphase Simulation | Tips & Tricks"

What is CFD (Computational Fluid Dynamics) of Multiphase Model?

CFD of Multiphase Model is a numerical simulation technique used to model and analyze the behavior of fluids that consist of two or more phases, such as gas-liquid or liquid-solid. It involves solving the governing equations of fluid flow, mass transfer, and energy transfer using computational methods to predict the behavior of multiphase flows.

What are the main applications of CFD of Multiphase Model?

CFD of Multiphase Model has a wide range of applications in various industries, including chemical, petrochemical, aerospace, and biomedical. It is used to analyze and optimize the performance of multiphase systems, such as oil and gas pipelines, mixing tanks, and heat exchangers.

What are the governing equations used in CFD of Multiphase Model?

The governing equations used in CFD of Multiphase Model are the Navier-Stokes equations, which describe the conservation of mass, momentum, and energy for a fluid system. These equations are solved numerically to simulate the behavior of multiphase flows.

What are the challenges in modeling multiphase flows using CFD?

One of the main challenges in modeling multiphase flows using CFD is accurately capturing the interface between the different phases. This requires sophisticated numerical methods and algorithms to track the movement and deformation of the interface. Other challenges include accounting for interphase mass and energy transfer, and dealing with complex geometries and boundary conditions.

How can CFD of Multiphase Model be used to improve design and operations?

CFD of Multiphase Model can be used to optimize the design and operations of multiphase systems by providing detailed information about the flow behavior, such as pressure drops, velocity profiles, and mixing characteristics. This helps in identifying areas of improvement and optimizing the design parameters to increase efficiency and reduce costs.

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