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vk.com/club152685050Simulating a Single Battery| vkCell.com/id446425943Using the MSMD Battery Model

8.In a manner similar to the previous step, load the files max-temp-0.5c.out, max-temp-1c.out, and max-temp-5c.out and display the maximum temperature curves in the domain.

Figure 25.13: NTGK Model: Maximum Temperature in the Domain (p. 850) shows the maximum temperature curves in the simulation for different discharge rates.

Figure 25.13: NTGK Model: Maximum Temperature in the Domain

25.4.6. Simulating the Battery Pulse Discharge Using the ECM Model

1.In the MSMD Battery Model dialog box, under E-Chemistry Models, select Equivalent Circuit Model.

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

3.Retain the default selection of Specified C-Rate and enter 1 for C-Rate.

4.Under the Model Parameters tab, retain the battery specific parameters.

For a given battery, these model parameters can be obtained using the battery's HPPC testing data. See Using the Dual-Potential MSMD Battery Model Text User Interface in the ANSYS Fluent Advanced Add-On Modules for details.

5.Click OK to apply the ECM battery model settings and close the MSMD Battery Model dialog box

6.Click OK in the Warning dialog box informing you that the re-initialization of the battery model is required.

7.Disable writing the maximum temperature in the domain over time to a file.

Solutions Report Definitions max_temp Edit...

a.In the Volume Report Definition dialog box, under Report Files, deselect max_temp-rfile.

b.Click OK to close the Volume Report Definition dialog box.

8.In a similar manner, disable writing the time-dependent voltage at the positive tab to a file.

 

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Setup and Solution

9.In the Solution Initialization task page, click Initialize to re-initialize the field variables.

10.Simulate the battery pulse discharge by changing the battery operating conditions each time after running the calculation for five minutes.

a.In the Run Calculation task page, set Number of Time Steps to 10 and click Calculate.

b.Once the calculation is complete, set C-Rate to 0 and run the calculation for 10 more time steps.

c.Continue the simulation by alternating the value of C-Rate between 1 C and 0 C until, until the battery is fully discharged.

Note

Instead of doing this manually, you can use the Using Profile option in the MSMD Battery Model dialog box and load a profile file with specified C-rate fluctuations to drive the whole process. For more information about the usage of a profile file, refer to Specifying Battery Model Options in the ANSYS Fluent Advanced Add-On Modules..

The battery pulse discharge is summarized in Figure 25.14: Battery Pulse Discharge (p. 851).

Figure 25.14: Battery Pulse Discharge

25.4.7. Using the Reduced Order Method (ROM)

You will use the ntgk.cas.gz case file that you saved earlier to illustrate how to use the ROM for time-efficient calculations. This section assumes that you are already familiar with the ANSYS Fluent battery model; only the steps related specifically to using the ROM for problem solution are discussed here.

1.Read the NTGK model case file ntgk.cas.gz.

2.Initialize the problem.

3.In the Run Calculation task page, enter 3 for Number of Time Steps and click Calculate.

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of ANSYS, Inc. and its subsidiaries and affiliates.

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