混合三周期最小表面结构的动态力学行为和变形机制

IF 5.1 2区 工程技术 Q1 ENGINEERING, MECHANICAL
Weidong Song , Runzhi Li , Genzhu Feng , Lijun Xiao
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引用次数: 0

摘要

混合设计策略对传统的基于支撑的晶格超材料的稳定性和吸能性能的提高是有效的。然而,以往的研究对吸能性能等方面的探索还不够全面。针对三周期最小表面(TPMS)结构优异的力学性能,采用熔融沉积建模(FDM)工艺设计并制备了四种不同类型的混合TPMS结构。通过准静态和动态实验研究了其在压缩条件下的力学响应和变形行为,重点研究了相对密度、加载方向和加载速度对其的影响。同时,根据实验安排补充了数值模拟,揭示了不能直接从实验中获得的介观信息。实验和数值结果表明,随着加载方向的不同,杂化结构表现出不同的特性。随着相对密度的增大,杂化结构的高原应力显著增大,而变形模式基本保持不变。与侧向压缩试样相比,轴向加载下混杂结构由于变形均匀,呈现出更高的高原应力。此外,混合设计减轻了TPMS结构屈服后响应中的应力软化现象。值得注意的是,与均匀结构相比,混合TPMS结构表现出优越的比能吸收(SEA)和能量吸收效率,其中SEA比均匀Gyroid结构提高了15%至59%,比均匀Diamond结构提高了5.6%至72.4%。这些发现为该材料在抗冲击领域的应用提供了潜在的前景。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Dynamic mechanical behaviors and deformation mechanism of hybrid triply periodic minimal surface structures
The hybrid design strategy has proven effective for traditional strut-based lattice metamaterials to enhance their stability and energy absorption performance. However, previous studies have been insufficiently comprehensive in exploring energy absorption performance and other related aspects. Given the superior mechanical properties of Triply Periodic Minimal Surface (TPMS) structures, four different types of hybrid TPMS structures were designed and fabricated by fused deposition modeling (FDM) process. Quasi-static and dynamic experiments were conducted to investigate their mechanical response and deformation behavior under compression, with a focus on the impact of relative density, loading directions and loading speeds. Meanwhile, numerical simulations were supplemented according to the experimental arrangement to uncover mesoscopic information that cannot be directly obtained from experiments. The experimental and numerical results demonstrated that the hybrid structures exhibited distinct properties depending on the loading direction. As the relative density increased, the plateau stress of the hybrid structures increased significantly, while the deformation mode remained nearly unchanged. Compared to specimens compressed along the lateral direction, the hybrid structures subjected to axial loading presented higher plateau stress due to their uniform deformation. Additionally, the hybrid design mitigated the stress softening phenomenon in the post-yield response of TPMS structures. Notably, the hybrid TPMS structures demonstrated superior specific energy absorption (SEA) and energy absorption efficiency compared to uniform structures, with SEA shows an improvement of 15 % to 59 % compared to the uniform Gyroid structure, and an improvement of 5.6 % to 72.4 % compared to the uniform Diamond structure. These findings provide potential prospects for application in the field of impact resistance.
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来源期刊
International Journal of Impact Engineering
International Journal of Impact Engineering 工程技术-工程:机械
CiteScore
8.70
自引率
13.70%
发文量
241
审稿时长
52 days
期刊介绍: The International Journal of Impact Engineering, established in 1983 publishes original research findings related to the response of structures, components and materials subjected to impact, blast and high-rate loading. Areas relevant to the journal encompass the following general topics and those associated with them: -Behaviour and failure of structures and materials under impact and blast loading -Systems for protection and absorption of impact and blast loading -Terminal ballistics -Dynamic behaviour and failure of materials including plasticity and fracture -Stress waves -Structural crashworthiness -High-rate mechanical and forming processes -Impact, blast and high-rate loading/measurement techniques and their applications
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