Influence of Cell Selection and Orientation within the Traction Battery on the Crash Safety of Electric-Powered Two-Wheelers
Abstract
:1. Introduction
2. Materials and Methods
- The cell selection, by considering two 18650 cells from different manufacturers;
- The cells orientation within the traction battery, by considering two different cell orientations.
2.1. Reference E-PTW, Cells, and Crash Scenario
2.2. E-PTW, Traction Battery, Cells, and Crash Scenario FE Modelling
- The traction battery housing is composed of two components: the external plates (EPs), which define the external contour of the housing, and the longitudinal plates (LPs), which are placed between the modules for their fixation and thermal management. Both housing components are modelled with a total of 27,286 2D quadratic elements (average side length of 5 mm) with Belytschko-Tsay formulation with 5 integration points and using an elastoplastic aluminium material model without strain-rate hardening behaviour and with an effective plastic strain-based failure criterion in tension. The material model’s effective plastic strain at failure was calibrated using data retrieved from tensile tests executed with specimens of the same material. The thickness range of the EPs and LPs is defined through variable parameters to be used as the input in the analysis.
- The modules consist of the following subcomponents:
- ○
- The cell holders are responsible for holding the cells together and are modelled with a total of 86,910 2D elements, combining quadratic and triangular elements (average side length 5 mm), with Belytschko-Tsay formulation with 5 integration points using an elastic material model without strain-rate hardening and with an effective plastic strain-based failure criterion resembling the material behaviour of an acrylonitrile butadiene styrene thermoplastic.
- ○
- The cells are modelled using a combination of 544 2D and 1881 1D elements, according to Raffler et al. [32]. Two-dimensional elements are used to geometrically model the outer surface of the cell, and one-dimensional elements are used to represent the cell’s mechanical behaviour under load.
- ○
- The connection between the modules and traction battery housing (i.e., connection screws) is modelled with 60 1D elements (average length 10 mm) with Hughes-Liu formulation with cross-section integration formulation and a steel elastic material model to simulate the screw connection needed to fix the modules within the traction battery housing.
2.3. Assessment of FE Models
2.4. Metamodel Building and Assessment
- is the mean ISCR error between the FE simulations and the metamodel;
- is the standard deviation of the ISCR error.
2.5. Evaluation of the Crash Safety
3. Results
3.1. Influence of Cell Selection on ISCR—Concept Y
3.2. Influence of Cell Selection on ISCR—Concept Z
3.3. Influence of Cell Orientation on ISCR
4. Discussion
5. Limitations
6. Conclusions
- The cell orientation within the traction battery has the biggest influence on the crash safety of the traction battery. In particular, changing only the cell orientation can reduce the ISCR by 73%. This knowledge can be leveraged in the design phase of the traction battery of an electric vehicle if a potentially dangerous crash scenario is known by orienting the cell to obtain a loading in the cell radial direction during the collision. Therefore, the gravimetric energy density of traction batteries can be increased because fewer additional reinforcements are needed.
- The cell selection can influence the crash safety of the traction battery of an electric-powered two-wheeler but with a smaller contribution than the cell orientation. In particular, switching from cell A to cell B can reduce the ISCR by 48%. Therefore, the crash safety of a traction battery can be improved without structural reinforcements or design changes in the traction battery housing or vehicle frame. Knowing this aspect, the crash safety of already existing traction batteries can be improved with small effort.
- In a crash load condition, the longitudinal plates of the traction battery housing can improve the crashworthiness of the entire traction battery housing, acting as energy-absorbing structures while fulfilling their functional role for the traction battery assembly. Therefore, their design should be subjected to a crashworthiness assessment to avoid landing in an area of the design space with a high internal short circuit risk.
- The investigation approach, using metamodels, has been proven as both computationally inexpensive and adequately precise (maximal absolute internal short circuit risk error range of 9.1%) for investigating the internal short circuit risk of traction battery concepts. The same approach can be used in a vehicle development phase to identify optimal combinations of the thickness of traction battery housing components, cell orientations, and selections to accelerate the development of crashworthy traction batteries.
Author Contributions
Funding
Institutional Review Board Statement
Informed Consent Statement
Data Availability Statement
Acknowledgments
Conflicts of Interest
Appendix A
Graphic | Method | Rating | Weight | |
---|---|---|---|---|
Radial global crush | Corridor method | 1.0 | 0.5 | |
Correlation method | 0.974 | 0.5 | ||
Total | 0.990 | |||
Axial global crush | Corridor method | 1.0 | 0.5 | |
Correlation method | 0.995 | 0.5 | ||
Total | 0.997 | |||
Indentation | Corridor method | 0.972 | 0.5 | |
Correlation method | 0.971 | 0.5 | ||
Total | 0.972 |
Graphic | Method | Rating | Weight | |
---|---|---|---|---|
Radial global crush | Corridor method | 1.0 | 0.5 | |
Correlation method | 0.971 | 0.5 | ||
Total | 0.985 | |||
Axial global crush | Corridor method | 0.998 | 0.5 | |
Correlation method | 0.974 | 0.5 | ||
Total | 0.986 | |||
Indentation | Corridor method | 0.992 | 0.5 | |
Correlation method | 0.901 | 0.5 | ||
Total | 0.946 |
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Acronym | Description |
---|---|
Radial cell deformation. Calculated as proposed by Raffler et al. [32] | |
Radial cell deformation at ISC onset. | |
Pole cell deformation. Calculated as proposed by Raffler et al. [32] | |
Pole cell deformation at ISC onset. |
Grade | Score Range |
---|---|
Excellent | 0.86 ≤ R < 1.00 |
Good | 0.65 ≤ R < 0.86 |
Fair | 0.44 ≤ R < 0.65 |
Marginal | 0.26 ≤ R < 0.44 |
Unacceptable | 0.00 ≤ R < 0.26 |
Acronym | Description and Units | Value |
---|---|---|
Mass of the traction battery housing [kg] | Output | |
Density of the housing material [kg/mm3] | 2.7 × 10−6 | |
Thickness of the longitudinal plates [mm] | Variable | |
Middle surface of the longitudinal plates [mm2] | 171,7831 | |
Thickness of the external plates [mm] | Variable | |
Middle surface of the external plates [mm2] | 515,192 |
Cell Integrated | Mean | Standard Deviation | Upper Tolerance Range | Lower Tolerance Range |
---|---|---|---|---|
A | 0 | 0 | 0 | 0 |
B | −0.2 | 1.2 | 2.2 | −2.6 |
Cell | Impactor Displacement at ISC Onset [mm] | ||
---|---|---|---|
Global Radial Crush | Global Axial Crush | Indentation | |
A | 5.5 | 3.5 | 4.5 |
B | 6.7 | 5.6 | 5.6 |
Cell Integrated | Mean | Standard Deviation | Upper Tolerance Range | Lower Tolerance Range |
---|---|---|---|---|
A | 0.3 | 2.3 | 4.9 | −4.2 |
B | 0.0 | 0.9 | 1.8 | −1.9 |
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Share and Cite
Sevarin, A.; Fasching, M.; Raffler, M.; Ellersdorfer, C. Influence of Cell Selection and Orientation within the Traction Battery on the Crash Safety of Electric-Powered Two-Wheelers. Batteries 2023, 9, 195. https://doi.org/10.3390/batteries9040195
Sevarin A, Fasching M, Raffler M, Ellersdorfer C. Influence of Cell Selection and Orientation within the Traction Battery on the Crash Safety of Electric-Powered Two-Wheelers. Batteries. 2023; 9(4):195. https://doi.org/10.3390/batteries9040195
Chicago/Turabian StyleSevarin, Alessio, Markus Fasching, Marco Raffler, and Christian Ellersdorfer. 2023. "Influence of Cell Selection and Orientation within the Traction Battery on the Crash Safety of Electric-Powered Two-Wheelers" Batteries 9, no. 4: 195. https://doi.org/10.3390/batteries9040195
APA StyleSevarin, A., Fasching, M., Raffler, M., & Ellersdorfer, C. (2023). Influence of Cell Selection and Orientation within the Traction Battery on the Crash Safety of Electric-Powered Two-Wheelers. Batteries, 9(4), 195. https://doi.org/10.3390/batteries9040195