首页|期刊导航|高压物理学报|基于力学匹配设计的仿生薄壁-泡沫复合结构的分级能量吸收与动态响应

基于力学匹配设计的仿生薄壁-泡沫复合结构的分级能量吸收与动态响应OA

Hierarchical Energy Absorption and Dynamic Response of Bionic Thin-Walled-Foam Composite Structures Based on Mechanical Matching Design

中文摘要英文摘要

针对轻质防护结构对稳定承载与高效能量吸收协同提升的需求,提出了一种基于力学匹配的混合仿生薄壁-泡沫复合结构设计方法.利用增材制造技术,制备了 3 种构型的聚乳酸(polylactic acid,PLA)仿生壳体,并通过原位发泡构建聚氨酯泡沫填充复合结构.通过拉伸试验、准静态压缩试验及动态落锤冲击试验,研究发泡过程产生的热效应对 PLA 壳体性能及复合结构力学响应的影响.通过峰值力、平台力、比吸能、平均压溃力、压溃力效率等指标对结构耐撞性能进行定量评价.结果表明,发泡导致的热效应降低了 PLA 的弹性模量和强度,并提高延展性,从而改善壳体与泡沫之间的力学匹配.复合结构的平台力和平均压溃力显著提升,压溃模式由局部失稳转变为渐进堆叠坍塌,表现出稳定的分级吸能特征.动态冲击试验进一步验证了结构在高能冲击作用下的稳定承载和吸能能力.研究结果揭示了几何构型、材料匹配与热-力耦合效应协同作用下的结构吸能机制,为轻质仿生防护结构的设计与优化提供了新的思路.

To achieve the synergistic improvement of load-bearing stability and energy absorption in lightweight protective structures,a bio-inspired thin-walled-foam composite structure based on mechanical matching design was proposed.Three configurations of polylactic acid(PLA)bio-inspired shells were fabricated via additive manufacturing,and subsequently filled with polyurethane foam through an in-situ foaming process.Tensile tests,quasi-static compression tests,and drop-weight impact tests were conducted to investigate the foaming-induced thermal effects on the mechanical properties of the PLA shells and the structural response of the composites.Crashworthiness was evaluated using peak crushing force(PCF),plateau force,specific energy absorption(SEA),mean crushing force(MCF),and crushing force efficiency(CFE).Results show that the temperature rise during foaming reduces the elastic modulus and strength of PLA while improving its ductility,thereby enhancing the mechanical compatibility between the shell and foam.Consequently,the composite structures exhibit significantly increased plateau force and MCF,and their collapse mode transforms from local instability to progressive stacked crushing,leading to stable hierarchical energy absorption.Dynamic impact tests further demonstrate the superior load-bearing and energy absorption performance of the composite structures under high-energy impact.The results highlight the synergistic role of geometric configuration,material matching,and thermal-mechanical coupling in regulating the energy absorption behavior,providing guidance for the design of lightweight bio-inspired protective structures.

高丹丹;闫淏;周颖;王涛;黄广炎

北京理工大学爆炸科学与安全防护全国重点实验室,北京 100081北京理工大学爆炸科学与安全防护全国重点实验室,北京 100081清华大学航天航空学院应用力学实验室,北京 100084北京理工大学爆炸科学与安全防护全国重点实验室,北京 100081北京理工大学爆炸科学与安全防护全国重点实验室,北京 100081

数理科学

混合仿生设计增材制造薄壁-泡沫复合结构热-力耦合效应分级吸能

hybrid biomimetic designadditive manufacturingthin-walled-foam composite structuresthermal-mechanical coupling effecthierarchical energy absorption

《高压物理学报》 2026 (7)

73-85,13

国家自然科学基金(12572427,12372333)创新研究群体项目(12221002)

10.11858/gywlxb.20261043

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