探索带有生物启发功能分级芯材的快速成型夹层梁的抗弯行为

IF 3.5 3区 材料科学 Q1 ENGINEERING, MECHANICAL
Timothy L Grondin, Ali P Gordon, Denizhan Yavas
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引用次数: 0

摘要

多年来,三明治复合材料结构因其出色的比强度和比刚度而被广泛应用于航空航天和航海领域。尽管其应用广泛,但人们一直在努力进一步提高其机械性能。本研究受自然界的启发,深入探讨了功能分级(FG)夹芯对提高快速成型夹层梁弯曲性能的影响。结合欧拉-伯努利理论和吉布森-阿什比(Gibson-Ashby)方法的分析表述,探索了带有三角形蜂窝单元 FG 芯材的拟议夹层梁的设计空间,以制定抗弯性能指标。该研究涉及对芯材密度线性变化的考察。为了验证分析预测,在 ABAQUS 商业 FE 程序中创建了线性弹性有限元 (FE) 模型。随后,使用聚合喷射打印机(Stratasys J55)对带有 FG 夹芯的夹层梁进行快速制造,从而消除了面片与夹芯之间的二次粘接。研究了两种不同的构建方向,以探讨构建方向对弯曲性能的影响。数值和实验结果与分析结果非常吻合,表明使用 FG 芯材后,性能指标提高了约 31%。值得注意的是,采用 FG 夹芯的夹层梁表现出渐进式破坏,而采用均匀夹芯的夹层梁则表现出突然的灾难性破坏。因此,所建议的 FG 夹芯设计不仅能略微提高能量吸收能力,更重要的是能显示出故障安全的失效特性。这些发现为航空航天和生物医学应用中的高性能、轻质夹层结构提供了巨大潜力。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Exploring flexural behavior of additively manufactured sandwich beams with bioinspired functionally graded cores
Sandwich composite structures have been widely used in aerospace and marine applications for many years due to their remarkable specific strength and stiffness. Despite their widespread use, there has been a constant effort to further improve their mechanical properties. This investigation delves into the influence of a Functionally Graded (FG) core, inspired by nature, in the enhancement of flexural properties of additively manufactured sandwich beams. The design space of the proposed sandwich beam with FG core of cellular cells in triangular shape is explored using an analytical formulation combining the Euler-Bernoulli theory and the Gibson-Ashby approach to develop a flexural performance index. The study involves examining a linear variation of the core density. To validate the analytical predictions, linear-elastic Finite Element (FE) models are created in the ABAQUS commercial FE program. Subsequently, the sandwich beams with FG core are additively manufactured using a polyjet printer (Stratasys J55), eliminates the need for secondary bonding between the face sheet and core. Two different build orientations are examined to investigate the influence of build orientation on flexural properties. The numerical and experimental results closely align with the analytical findings, indicating an approximate 31% increase in the performance index with the FG core. Noteworthy is that sandwich beams featuring FG cores exhibits a progressive failure, whereas those with uniform cores displayed sudden and catastrophic failure. As a result, the suggested FG core design not only contributes to a slight improvement in energy absorption capacity but, more significantly, displays fail-safe failure characteristics. These findings present significant potential for high-performance, lightweight sandwich structures in aerospace and biomedical applications.
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来源期刊
Journal of Sandwich Structures & Materials
Journal of Sandwich Structures & Materials 工程技术-材料科学:表征与测试
CiteScore
9.60
自引率
2.60%
发文量
49
审稿时长
7 months
期刊介绍: The Journal of Sandwich Structures and Materials is an international peer reviewed journal that provides a means of communication to fellow engineers and scientists by providing an archival record of developments in the science, technology, and professional practices of sandwich construction throughout the world. This journal is a member of the Committee on Publication Ethics (COPE).
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