Biomimetic Kagome-Gyroid interpenetrating metamaterial for tailoring lightweight and mechanical performance

IF 7.9 2区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Materials & Design Pub Date : 2025-04-01 Epub Date: 2025-02-15 DOI:10.1016/j.matdes.2025.113729
Chang Wang , Xin Lu , Xiaoyi Yang , Hanning Zuo , Mengnie Victor Li , Xin Zhao , Tao Peng , Xing Lu
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Abstract

This study presents a novel interpenetrating Kagome-Gyroid (K-G) structure designed to optimize lightweight, high-strength materials. Inspired by natural biomimetic structures, such as the microstructure of butterfly wings and cancellous bone, which are known for their lightweight and strength properties, the K-G structure combines the shear resistance of the Kagome lattice with the high specific strength and stiffness of the Gyroid lattice. The optimized K-G structure demonstrates a 49.5 % increase in specific energy absorption and a 35.6 % improvement in energy absorption efficiency compared to conventional materials, highlighting its superior potential for high-impact applications. Experimental and simulation results reveal that geometric parameters significantly influence the failure and fracture behavior of the structure, particularly affecting its energy absorption characteristics. The study also investigates the distribution patterns of surface roughness and internal defects during the laser powder bed fusion (L-PBF) manufacturing process, highlighting their potential impact on the mechanical performance of the final structure. This novel design provides a promising foundation for the development of advanced materials with superior energy absorption capabilities, making it ideal for high-impact applications in aerospace, rail transportation, and automotive industries, where lightweight and enhanced mechanical performance are critical.

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仿生Kagome-Gyroid互穿超材料,用于剪裁,重量轻,机械性能好
本研究提出了一种新的互穿Kagome-Gyroid (K-G)结构,旨在优化轻量化,高强度材料。K-G结构的灵感来自于自然仿生结构,如蝴蝶翅膀和松质骨的微观结构,这些结构以其轻质和强度特性而闻名,K-G结构结合了Kagome晶格的抗剪切性和Gyroid晶格的高比强度和刚度。与传统材料相比,优化后的K-G结构比能量吸收提高了49.5%,能量吸收效率提高了35.6%,突出了其在高冲击应用中的优越潜力。实验和仿真结果表明,几何参数对结构的破坏和断裂行为有显著影响,特别是对结构的能量吸收特性影响较大。该研究还研究了激光粉末床熔合(L-PBF)制造过程中表面粗糙度和内部缺陷的分布模式,强调了它们对最终结构力学性能的潜在影响。这种新颖的设计为具有卓越能量吸收能力的先进材料的开发提供了有希望的基础,使其成为航空航天,铁路运输和汽车工业中高冲击应用的理想选择,这些应用的轻量化和增强的机械性能至关重要。
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来源期刊
Materials & Design
Materials & Design Engineering-Mechanical Engineering
CiteScore
14.30
自引率
7.10%
发文量
1028
审稿时长
85 days
期刊介绍: Materials and Design is a multi-disciplinary journal that publishes original research reports, review articles, and express communications. The journal focuses on studying the structure and properties of inorganic and organic materials, advancements in synthesis, processing, characterization, and testing, the design of materials and engineering systems, and their applications in technology. It aims to bring together various aspects of materials science, engineering, physics, and chemistry. The journal explores themes ranging from materials to design and aims to reveal the connections between natural and artificial materials, as well as experiment and modeling. Manuscripts submitted to Materials and Design should contain elements of discovery and surprise, as they often contribute new insights into the architecture and function of matter.
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