异质多孔结构材料的设计策略与抗冲击性能研究进展OA
Research Progress on Design Strategies and Impact Resistance of Heterogeneous Cellular Structures Material
多孔结构材料作为一类轻质高强的功能-结构一体化材料,在航空航天、汽车制造、生物医疗等领域应用广泛.然而,传统单一构型的多孔结构材料(如蜂窝结构、点阵晶格)在面对爆炸冲击波、多向冲击或非线性变形等复杂工况时,表现出性能局限.在此背景下,异质多孔结构材料(heterogeneous cellular structure material,HCSM)逐渐成为冲击防护领域的研究热点.系统综述了近年来 HCSM 的设计策略及其抗冲击性能.HCSM 主要有拓扑构型异质(包括互补型和增强型融合)和材料异质(如泡沫材料与剪切增稠材料的填充)两大类型,通过创新性的"功能融合"途径,实现了对单一构型的多孔结构材料性能瓶颈的突破.进一步梳理了 HCSM 在承受冲击载荷时的协同增强效应与变形机理,深入分析了其在能量吸收效率、刚度及稳定性提升方面的内在机制.尽管 HCSM 的研究已取得显著进展,但仍面临连接性优化、增材制造工艺匹配、复杂工况验证以及多功能集成等诸多挑战.展望未来,融合人工智能与机器学习技术,有望实现 HCSM 从设计到制造的全流程一体化优化,从而为开发新一代高性能抗冲击结构材料提供新的方向.
As lightweight and high-strength functional-structural integrated materials,cellular structural materials are widely applied in aerospace,automotive manufacturing,and biomedical fields.However,traditional single-configuration cellular materials(e.g.,honeycomb structures and point-lattice lattices)gradually exhibit performance limitations under complex conditions such as impact shock waves,multi-directional impacts,or nonlinear deformations.Against this backdrop,heterogeneous cellular structure material(HCSM)have emerged as a research hot pot in impact protection.This paper systematically reviews recent design strategies and impact resistance performance of HCSM.HCSMs are primarily categorized into two types:topological configuration heterogeneity(including complementary and enhanced fusion)and material heterogeneity(e.g.,filling with foam materials and shear-thickening materials).Through innovative"functional fusion"approaches,they overcome the performance bottlenecks of single-configuration cellular materials.The study further elucidates the synergistic reinforcement effects and deformation mechanisms of HCSM under impact loads,while analyzing their intrinsic mechanisms for improving energy absorption efficiency,stiffness,and stability.Despite significant progress in HCSM research,challenges remain in connectivity optimization,additive manufacturing process compatibility,complex condition validation,and multifunctional integration.Going forward,the integration of artificial intelligence and machine learning technologies holds promise for achieving end-to-end optimization of HCSMs from design to manufacturing,thereby providing new directions for developing next-generation high-performance impact-resistant structural materials.
李世强;李子豪;王志华;卢国兴
太原理工大学航空航天学院,山西 太原 030024太原理工大学航空航天学院,山西 太原 030024太原理工大学航空航天学院,山西 太原 030024浙江大学航空航天学院,浙江 杭州 310000
数理科学
异质多孔结构材料抗冲击设计策略功能融合能量吸收
heterogeneous cellular structure materialimpact resistancedesign strategyfunctional integrationenergy absorption
《高压物理学报》 2026 (7)
3-27,25
国家自然科学基金(12472388)
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