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Setup and Solution

by a user-defined function) suddenly increases from 0 to 3.58 m/s and then decreases according to a cosine law.

• After 10 microseconds, the velocity returns to zero.

The calculation is run for 30 microseconds overall, that is, three times longer than the duration of the initial impulse.

Because the dimensions are small, the double-precision version of ANSYS Fluent will be used. Air will

be designated as the primary phase, and ink (which will be modeled with the properties of liquid water) will be designated as the secondary phase. Patching will be required to fill the ink chamber with the secondary phase. Gravity will not be included in the simulation. To capture the capillary effect of the ejected ink, the surface tension and prescription of the wetting angle will be specified. The surface inside the nozzle will be modeled as neutrally wettable, while the surface surrounding the nozzle orifice will be non-wettable.

17.4. Setup and Solution

The following sections describe the setup and solution steps for this tutorial:

17.4.1.Preparation

17.4.2.Reading and Manipulating the Mesh

17.4.3.General Settings

17.4.4.Models

17.4.5.Materials

17.4.6.Phases

17.4.7.Operating Conditions

17.4.8.User-Defined Function (UDF)

17.4.9.Boundary Conditions

17.4.10.Solution

17.4.11.Postprocessing

17.4.1. Preparation

To prepare for running this tutorial:

1.Download the vof.zip file here.

2.Unzip vof.zip to your working directory.

3.The files inkjet.msh and inlet1.c can be found in the folder.

4.Use Fluent Launcher to start the 2D version of ANSYS Fluent.

Fluent Launcher displays your Display Options preferences from the previous session.

5.Ensure that the Display Mesh After Reading option is enabled.

6.Enable Double-Precision.

Note

The double precision solver is recommended for modeling multiphase flows simulation.

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7.Ensure that the Serial processing option is selected.

17.4.2. Reading and Manipulating the Mesh

1.Read the mesh file inkjet.msh.

File Read Mesh...

A warning message will be displayed twice in the console. You need not take any action at this point, as the issue will be resolved when you define the solver settings in General Settings (p. 604).

2.Examine the mesh (Figure 17.2: Default Display of the Nozzle Mesh (p. 600)).

Figure 17.2: Default Display of the Nozzle Mesh

Tip

By zooming in with the middle mouse button, you can see that the interior of the model is composed of a fine mesh of quadrilateral cells (see Figure 17.3: The Quadrilateral Mesh (p. 601)).

 

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Setup and Solution

Figure 17.3: The Quadrilateral Mesh

3.Set graphics display options

View Display Options...

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a.Ensure that All is selected from the Animation Option drop-down list.

Selecting All will allow you to see the movement of the entire mesh as you manipulate the Camera view in the next step.

4.Click Apply and close the Display Options dialog box.

5.Manipulate the mesh display to show the full chamber upright.

View Display Views...

a.Select front from the Views selection list.

b.Select axis from the Mirror Planes selection list.

c.Click Apply.

The mesh display is updated to show both sides of the chamber.

d.Click the Camera... button to open the Camera Parameters dialog box.

 

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Setup and Solution

Note

You may notice that the scale of the dimensions in the Camera Parameters dialog box appear very large given the problem dimensions. This is because you have not yet scaled the mesh to the correct units. You will do this in a later step.

i.Drag the indicator of the dial with the left mouse button in the clockwise direction until the upright view is displayed (Figure 17.4: Mesh Display of the Nozzle Mirrored and Upright (p. 604)).

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