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May 1, 2026Materials3 citationsOpen Access

Energy Absorption of Curvilinear Hybrid Auxetic Honeycombs

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SLSiyun LiNQNa QiuWLWei Liu

Key Points

  • This study aims to enhance energy absorption and deformation stability in auxetic honeycombs by introducing curvilinear designs.
  • Proposed curvilinear hybrid auxetic honeycomb by replacing straight walls with curved ligaments.
  • Conducted combined experimental and numerical investigations, validating finite element simulations with quasi-static compression experiments.
  • Performed a parametric study on geometric variables impacting specific energy absorption and peak crushing force.
  • Curvilinear hybrid auxetic honeycomb shows up to 67.06% improvement in specific energy absorption compared to conventional designs.
  • The mechanism exhibits more stable deformation under compression, enhancing crashworthiness performance.
  • Specific energy absorption and peak crushing force can be tuned by adjusting geometric angles (θ1, θ2).

Abstract

Auxetic cellular materials attract increasing attention for crashworthiness and impact protection due to their negative Poisson’s ratio (NPR). However, conventional double-arrowhead auxetic honeycombs (DAHs) with straight ligaments often exhibit limited energy absorption and unstable collapse under large deformation. In this study, a curvilinear hybrid auxetic honeycomb (CHAH) is proposed by replacing straight walls with smoothly curved ligaments and embedding a circular positive Poisson’s ratio subcell to provide symmetric support. The mechanical behavior of the CHAH is investigated through a combined experimental–numerical approach. Finite element simulations are validated by quasi-static compression experiments, and a parametric study is conducted to evaluate the influence of key geometric variables on specific energy absorption (SEA) and peak crushing force (PCF). Based on the validated simulations, a multi-objective optimization framework integrating optimal Latin hypercube sampling, radial basis function surrogate modeling, and NSGA-II is employed to optimize the structural parameters. Compared with the conventional DAH under identical material and volume conditions, the CHAH exhibits significantly improved deformation stability and energy absorption capability, with SEA increasing by up to 67.06% and a more stable plateau response. In addition, SEA and PCF can be effectively tuned by varying the geometric angles (θ1, θ2).

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Cite This Study

Li et al. (2026) studied this question.

synapsesocial.com/papers/69f442fc967e944ac5566644https://doi.org/10.3390/ma19091791
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