增材制造正弦波纹双相晶格超材料的动态力学行为

IF 2 3区 工程技术 Q2 MATERIALS SCIENCE, CHARACTERIZATION & TESTING
H. Wang, J. You, Y. Tian, Z. Chen, S. Yin
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引用次数: 0

摘要

增材制造使晶格超材料设计具有复杂的结构。然而,如何设计具有更大抗冲击性的结构仍未得到充分探索。目的研制仿生双相超材料,并对其动态性能进行研究。方法模拟螳螂虾的冲击区域,将增强相(RP)作为多相位差的正弦波形,设计双相晶格(dpl)。然后,采用增材制造技术,以不锈钢粉为原料,在不同应变速率下进行压缩,制备出这些超材料复合材料。结果在准静态压缩条件下,与传统的均匀晶格材料相比,DPLs具有更好的能量吸收能力。对于不同相结构的DPLs,随着应变率的增加,承载能力、破坏模式和冲击耗能时间的差异更加明显。双相晶格超材料在低速冲击条件下的强度值是准静态压缩条件下的2.83倍,表现出优异的应变速率硬化效果。发现破坏模式与RP排列模式和压缩应变率有关。然而,低速冲击下剪切带的传播路径与准静态压缩下剪切带的传播路径一致,表明无论冲击速度如何,剪切带的分布都以RP模式为主。结论本研究为晶格超材料在动态应用中的结构设计提供了有价值的见解。
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 Behavior of Sinusoidal Corrugated Dual-Phase Lattice Metamaterials by Additive Manufacturing

Background

Additive manufacturing enables lattice metamaterials designed with complex architectures. However, how to design the architecture for greater impact resistance remains not fully explored.

Objective

This study aims to develop bio-inspired dual-phase metamaterials and examine their dynamic performance.

Methods

By mimicking the impact region of mantis shrimp, dual-phase lattices (DPLs) were designed by incorporating reinforcement phase (RP) as sinusoidal corrugated forms with multiple phase differences. Then, those metamaterial composites were fabricated using additive manufacturing techniques with stainless steel powder and compressed under different strain rates.

Results

Under quasi-static compression conditions, DPLs demonstrated superior energy absorption capacity compared to traditional homogeneous lattice materials. For DPLs with various phase architectures, the differences in load-bearing capacity, failure modes, and impact energy dissipation time became more pronounced as strain rate increased. The dual-phase lattice metamaterials showed 2.83 times greater strength values under low-speed impact conditions than those under quasi-static compression, demonstrating excellent strain-rate hardening effects. Failure modes were found to be associated with both RP arrangement patterns and compressive strain rates. However, the shear band propagation paths under low-speed impact were consistent with those observed under quasi-static compression, indicating that RP pattern governed the shear band distribution irrespective of impact velocity.

Conclusions

This work provided valuable insights for the architecture design of lattice metamaterials in dynamic application.

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来源期刊
Experimental Mechanics
Experimental Mechanics 物理-材料科学:表征与测试
CiteScore
4.40
自引率
16.70%
发文量
111
审稿时长
3 months
期刊介绍: Experimental Mechanics is the official journal of the Society for Experimental Mechanics that publishes papers in all areas of experimentation including its theoretical and computational analysis. The journal covers research in design and implementation of novel or improved experiments to characterize materials, structures and systems. Articles extending the frontiers of experimental mechanics at large and small scales are particularly welcome. Coverage extends from research in solid and fluids mechanics to fields at the intersection of disciplines including physics, chemistry and biology. Development of new devices and technologies for metrology applications in a wide range of industrial sectors (e.g., manufacturing, high-performance materials, aerospace, information technology, medicine, energy and environmental technologies) is also covered.
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