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Setup and Solution

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

7.Select either Serial or Parallel under Processing Options. In this tutorial, Serial is selected for demonstration only.

25.4.2. Reading and Scaling the Mesh

1.Read the mesh file unit_battery.msh.

File Read Mesh...

When prompted, browse to the location of the unit_battery.msh and select the file. Once you read in the mesh, it is displayed in the embedded graphics windows.

The geometry is already in the correct scale. You don’t need to scale it.

2.Check the mesh.

Domain Mesh Check

25.4.3. Loading the MSMD battery Add-on

1. To load the MSMD battery add-on into ANSYS Fluent, type the following in the console window:

define/models/addon-module

A list of ANSYS Fluent add-on modules is displayed.

Fluent Addon Modules:

0.None

1.MHD Model

2.Fiber Model

3.Fuel Cell and Electrolysis Model

4.SOFC Model with Unresolved Electrolyte

5.Population Balance Model

6.Adjoint Solver

7.Single-Potential Battery Model

8.Dual-Potential MSMD Battery Model

9.PEM Fuel Cell Model

10.Macroscopic Particle Model

11.Reduced Order Model

Enter Module Number: [0] 8

2.Enter 8 to load the MSMD battery itself.

During the loading process, a scheme library containing the graphical and text user interface, and

a library of user-defined functions (UDFs) containing a set of UDFs for the battery module are loaded into ANSYS Fluent. Fluent reports the progress in the console.

Once the MSMD battery add-on is loaded, MSMD Battery Model appears in the Models task page and under the Models tree branch. The UDF library also becomes visible as a new entry in the UDF Library Manager dialog box.

25.4.4. NTGK Battery Model Setup

The following sections describe the setup steps for this tutorial: 25.4.4.1. Specifying Solver and Models

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25.4.4.2.Defining New Materials for Cell and Tabs

25.4.4.3.Defining Cell Zone Conditions

25.4.4.4.Defining Boundary Conditions

25.4.4.5.Specifying Solution Settings

25.4.4.6.Obtaining Solution

25.4.4.1. Specifying Solver and Models

1.In the Solver group of the Physics ribbon tab, enable a time-dependent calculation.

Physics Solver Transient

2.To solve for the temperature field, enable the Energy equation (in the Models group).

Physics Models Energy

3.Enable the battery model.

Physics Models More Dual Potential MSMD Battery Model

a.In the MSMD Battery Model dialog box, select Enable MSMD Battery Model. The dialog box expands to display the battery model’s settings.

 

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Setup and Solution

Figure 25.2: Model Options

b.Under the Model Options tab (Figure 25.2: Model Options (p. 827)), configure the following battery operation conditions:

i.Under E-Chemistry Models, retain the default selection of NTGK Empirical Model.

ii.Ensure that Solving Transport Equation is selected for Solution Method for E-field.

iii.Under Electrical Parameters, retain the default value of 14.6 Ah for Nominal Cell Capacity.

iv.Retain the default selection of Specified C-Rate and the value of 1 for C-Rate.

v. Retain the default value of 3 V for Min. Stop Voltage.

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c.Under the Model Parameters tab, retain the default settings for Y and U coefficients. For details, see the Fluent Advanced Add-On Modules documentation.

Note

If in your case, Y and U functions are not in the same function form as in the Kim’s paper, you need to modify the cae_user.c source code file. See the Fluent Advanced Add-On Modules documentation for details.

For a given battery, you can perform a set of constant current discharging tests, and then use the battery's parameter estimation tool to obtain the Y and U functions. See the Fluent Advanced Add-On Modules documentation for details.

d.Under the Conductive Zones tab (Figure 25.3: Conductive Zones (p. 829)), configure the following settings:

Group

Control or List

Value or Selection

Active Components

Zone (s)

e-zone

Tab Components

Zone (s)

tab_nzone

 

 

tab_pzone

For this single cell case, there are no busbar zones. Electro-chemical reactions occur only in the active zone. Battery tabs are usually modeled as passive zones, in which the potential field is also solved.

 

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Setup and Solution

Figure 25.3: Conductive Zones

e.Under the Electric Contacts tab (Figure 25.4: Electric Contacts (p. 830)), configure the contact surface and external connector settings as follows:

Group

Control or List

Value or Selection

External Connectors

Negative Tab

tab_n

 

Positive Tab

tab_p

The corresponding current or voltage boundary condition will be applied to those boundaries automatically.

Under the Electric Contacts tab, you can also define extra contact resistance for each zone.

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Figure 25.4: Electric Contacts

f.Click the Print Battery System Connection Information button.

ANSYS Fluent prints the battery connection information in the console window:

Battery

Network Zone

Information:

-------------------------------------

Battery Serial 1

 

Parallel 1

 

 

 

N-Tab

zone:

tab_nzone

 

Active

zone:

e_zone

 

P-Tab

zone:

tab_pzone

-----------------------------------

Active

zone list at

odd level: e_zone

Active

zone list at

even level:

 

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