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March 15, 2026Journal of Materials Research and Technology0 citationsOpen Access

Multi-objective Topology Optimization of Energy Absorbing Structures Incorporating Shape Memory Polymers: Design, Behavior, and Recoverability

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SHShahram HosseiniAFAmin FarrokhabadiRNRmina Nazari

Key Points

  • The aim is to design and evaluate structures that enhance energy absorption performance using topology optimization techniques.
  • Developed a curved unit cell called CurvoTopoCell using a multi-objective optimization framework.
  • Fabricated four distinct configurations (M1-M4) through 3D printing with PLA+ filament.
  • Analyzed performance metrics like specific energy absorption and crush force efficiency under compressive loading and thermal recovery.
  • The optimized unit cell improved specific energy absorption by 23% compared to other configurations.
  • Configuration M1 had the highest initial specific energy absorption and mean crushing force.
  • Configuration M3 exhibited 94.3% height recovery and the best cyclic stability with minimal reductions in energy absorption.

Abstract

This study focuses on the design and evaluation of topology-optimized structures to enhance energy absorption performance. A novel curved unit cell (CurvoTopoCell) was designed using a multi-objective topology optimization framework based on a weighted-sum scalarization approach, enabling the simultaneous improvement of stiffness, specific energy absorption, and crush force efficiency. Four distinct configurations (M1–M4) were fabricated via 3D printing with PLA+ filament. Key parameters, including specific energy absorption, mean crushing force, crush force efficiency, equivalent elastic modulus, and energy absorption efficiency coefficient were analyzed across three quasi-static compressive loading cycles and thermal recovery phases. Results demonstrated that the optimized unit cell achieved a 23% improvement in SEA compared to the other unit cells, attributed to reduced mass and enhanced strength. Experimental tests revealed that configuration M1 exhibited the highest initial SEA and Pmean. However, M3 showed superior cyclic stability, with only a 31% decrease in SEA, 25% decline in CFE, and 94.3% height recovery. Key innovations include integrating multi-objective topology optimization with shape-memory material (PLA+) for structural recovery, and introducing four novel configurations with distinct mechanical responses. These findings provide strategies for developing lightweight, reusable energy absorbers in automotive and aerospace applications.

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Cite This Study

Hosseini et al. (2026) studied this question.

synapsesocial.com/papers/69b64ccdb42794e3e660de81https://doi.org/10.1016/j.jmrt.2026.03.069
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