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◆ Materials (Basel, Switzerland)2026-09-14

Design- and Voxel-Based Analysis of a Topology-Density Dual-Gradient TPMS Absorber for Impact-Load Mitigation.

Wenying Xu, Jiawei Xu, Yonglin Chen, Dongyu Fan, Yongbin Wang, Tao Yu, Siyu Chen, Weidong Yang

原始摘要(英文原文)· Original abstract
Triply periodic minimal surface (TPMS) lattices are promising lightweight impact absorbers, but high-fidelity finite element modeling is costly, and uniform designs can develop high stress peaks during densification. This study presents a voxel-based finite element framework and a topology-density dual-gradient (TDDG) TPMS absorber. A convergence study selected a voxel size of 0.33 mm, yielding a 1.11% relative-density error and converged mechanical responses. Compared with a converged C3D4 tetrahedral model, the C3D8R voxel model reduced wall-clock time from 4222 to 497 s. Following validation against quasi-static compression tests, P, G, and IWP topologies at 20%, 30%, and 40% relative densities were screened. IWP20 and P40 were assigned to the impact- and support-facing regions and connected by normalized sigmoid interpolation. Under a 125 J impact, simulations predicted that TDDG-IWP20-P40 reduced peak nominal impact stress by 32.2% and 24.6% relative to U-P30 and DG-P20-P40, respectively, while maintaining comparable SEA. Additional simulations at 62.5 and 160 J confirmed lower peak stress than U-P30, with the added benefit over density-only grading becoming more pronounced at higher impact energy. Progressive crushing and delayed densification demonstrate the potential of TDDG TPMS absorbers for impact-load mitigation and future aerospace buffer designs.
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Design- and Voxel-Based Analysis of a Topology-Density Dual-Gradient TPMS Absorber for Impact-Load Mitigation. — 科研速览 Science Skim