Enhanced energy-absorbing and sound-absorbing capability of functionally graded and helicoidal lattice structures with triply periodic minimal surfaces

IF 5.6 2区 材料科学 Q2 MATERIALS SCIENCE, MULTIDISCIPLINARY International Journal of Minerals, Metallurgy, and Materials Pub Date : 2023-10-11 DOI:10.1007/s12613-023-2684-8
Miao Zhao, Zhendong Li, Jun Wei Chua, Chong Heng Lim, Xinwei Li
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引用次数: 2

Abstract

Lattice structures have drawn much attention in engineering applications due to their lightweight and multi-functional properties. In this work, a mathematical design approach for functionally graded (FG) and helicoidal lattice structures with triply periodic minimal surfaces is proposed. Four types of lattice structures including uniform, helicoidal, FG, and combined FG and helicoidal are fabricated by the additive manufacturing technology. The deformation behaviors, mechanical properties, energy absorption, and acoustic properties of lattice samples are thoroughly investigated. The load-bearing capability of helicoidal lattice samples is gradually improved in the plateau stage, leading to the plateau stress and total energy absorption improved by over 26.9% and 21.2% compared to the uniform sample, respectively. This phenomenon was attributed to the helicoidal design reduces the gap in unit cells and enhances fracture resistance. For acoustic properties, the design of helicoidal reduces the resonance frequency and improves the peak of absorption coefficient, while the FG design mainly influences the peak of absorption coefficient. Across broad range of frequency from 1000 to 6300 Hz, the maximum value of absorption coefficient is improved by 18.6%–30%, and the number of points higher than 0.6 increased by 55.2%–61.7% by combining the FG and helicoidal designs. This study provides a novel strategy to simultaneously improve energy absorption and sound absorption properties by controlling the internal architecture of lattice structures.

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具有三周期最小表面的功能梯度和螺旋晶格结构增强的能量吸收和吸声能力
格构结构由于其轻量化和多功能性,在工程应用中备受关注。在这项工作中,提出了一种具有三周期最小表面的功能梯度(FG)和螺旋晶格结构的数学设计方法。采用增材制造技术制备了均匀、螺旋、FG和FG与螺旋相结合的四种晶格结构。对晶格样品的变形行为、力学性能、能量吸收和声学性能进行了深入研究。螺旋晶格样品的承载能力在平台阶段逐渐提高,导致平台应力和总能量吸收分别比均匀样品提高了26.9%和21.2%以上。这种现象归因于螺旋形设计减少了晶胞中的间隙并提高了抗断裂性。在声学性能方面,螺旋面的设计降低了谐振频率,提高了吸收系数的峰值,而FG的设计主要影响吸收系数的峰。在1000-6300Hz的宽频率范围内,FG和螺旋设计相结合,吸收系数的最大值提高了18.6%-30%,高于0.6的点数增加了55.2%-61.7%。这项研究提供了一种新的策略,通过控制晶格结构的内部结构来同时提高能量吸收和吸声性能。
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来源期刊
CiteScore
9.30
自引率
16.70%
发文量
205
审稿时长
2 months
期刊介绍: International Journal of Minerals, Metallurgy and Materials (Formerly known as Journal of University of Science and Technology Beijing, Mineral, Metallurgy, Material) provides an international medium for the publication of theoretical and experimental studies related to the fields of Minerals, Metallurgy and Materials. Papers dealing with minerals processing, mining, mine safety, environmental pollution and protection of mines, process metallurgy, metallurgical physical chemistry, structure and physical properties of materials, corrosion and resistance of materials, are viewed as suitable for publication.
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