Optimization of sandwich aluminium foam as vibration damper for electric vehicle battery box cover using taguchi method

The increasing adoption of electric vehicles (EVs) has raised significant concerns regarding battery reliability under dynamic loading conditions, particularly vibration. Continuous vibration exposure may induce microstructural damage, leading to reduced performance and safety risks such as internal short circuits and thermal runaway. This study investigates the effectiveness of aluminum foam sandwich structures as vibration damping systems for EV battery casings. A finite element analysis (FEA) using Abaqus was conducted and validated against experimental modal analysis (EMA), showing a strong agreement with an average error of 2.18%. Parametric studies were performed by varying skin thickness (3–5 mm) and foam core thickness (10–19 mm). The results indicate that increasing both parameters significantly improves natural frequency and vibration performance. Optimization using the Taguchi method and ANOVA reveals that skin thickness has a more dominant influence than foam thickness. The optimal configuration demonstrates enhanced vibration resistance, suggesting that aluminum foam sandwich structures are a promising solution for improving EV battery durability and safety.

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Publication Details

Journal
Next Materials
Published
2026-09-17
DOI
https://doi.org/10.1016/j.nxmate.2026.103357
Primary Topic
Cellular and Composite Structures
Type
article
Field-Weighted Citation Impact
0.00

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article

Optimization of sandwich aluminium foam as vibration damper for electric vehicle battery box cover using taguchi method

Fauzan Djamaluddin, Ilyas Renreng, Fauziah Mat, Gerard Antonini Duma et al.
Next Materials
Cellular and Composite Structures
article

Optimization of sandwich aluminium foam as vibration damper for electric vehicle battery box cover using taguchi method

Fauzan Djamaluddin, Ilyas Renreng, Fauziah Mat, Gerard Antonini Duma, Lukman Kasim
article en

Abstract

The increasing adoption of electric vehicles (EVs) has raised significant concerns regarding battery reliability under dynamic loading conditions, particularly vibration. Continuous vibration exposure may induce microstructural damage, leading to reduced performance and safety risks such as internal short circuits and thermal runaway. This study investigates the effectiveness of aluminum foam sandwich structures as vibration damping systems for EV battery casings. A finite element analysis (FEA) using Abaqus was conducted and validated against experimental modal analysis (EMA), showing a strong agreement with an average error of 2.18%. Parametric studies were performed by varying skin thickness (3–5 mm) and foam core thickness (10–19 mm). The results indicate that increasing both parameters significantly improves natural frequency and vibration performance. Optimization using the Taguchi method and ANOVA reveals that skin thickness has a more dominant influence than foam thickness. The optimal configuration demonstrates enhanced vibration resistance, suggesting that aluminum foam sandwich structures are a promising solution for improving EV battery durability and safety.

Next MaterialsVol. 13
Universiti Malaysia Perlis (MY), Hasanuddin University (ID)
Universitas Hasanuddin
Affordable and clean energy
Openalex Percentile: Top 20%
Cellular and Composite Structures
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Optimization of sandwich aluminium foam as vibration damper for electric vehicle battery box cover using taguchi method — Fauzan Djamaluddin, Ilyas Renreng, et al. · Next Materials (2026) | TGRS Research Map | TGRS