超软生物启发超材料的增材制造

IF 14 1区 工程技术 Q1 ENGINEERING, MANUFACTURING International Journal of Machine Tools & Manufacture Pub Date : 2023-12-01 DOI:10.1016/j.ijmachtools.2023.104101
Zhenyang Gao , Pengyuan Ren , Hongze Wang , Zijue Tang , Yi Wu , Haowei Wang
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引用次数: 0

摘要

材料的动态加载性能在各种工程应用中起着至关重要的作用,例如航空航天防护部件、装甲、海洋基础设施和汽车碰撞安全。增材制造技术的出现使超材料的设计能够表现出卓越的机械性能和自然界中没有的人工工程特性。然而,由于动态机械过程的复杂性和不同应用的不同要求,制造抗动态载荷的理想材料是具有挑战性的。在这项研究中,提出了一种新的分层设计,将天然纤维启发框架与石墨烯启发的母体结构相结合。本设计旨在通过先进的制造技术,生产出具有动态抗压强度降低、能量吸收高、动态加载可编程等特点的超材料。采用以增材制造为导向的数字设计方法和机器学习技术,利用受天然纤维启发的键合原理,设计石墨烯启发超材料的动态加载性能,为先进制造的下一代超材料设计提供便利。实验结果表明,与现有的同类材料相比,我们的超材料取得了显著的进步。这些改进包括动态抗压强度降低高达86% %,同时在动态压缩期间保持了显著的682% %的能量吸收增强,能量衰减率降低了42% %。提出了一种组合设计策略和可编程动态压缩曲线方法,可在不改变超材料基本拓扑结构的情况下实现动态加载行为的定制优化。这项研究为下一代材料的开发提供了一条有前途的途径,这种材料能够承受动态载荷,具有智能和可编程的性能,适用于航空航天、国防和其他高价值应用。通过利用天然纤维启发结构和石墨烯启发超材料的优势,这项工作有助于材料的发展,具有量身定制的抗动态加载能力,并为智能动态加载性能开辟了新的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Additive manufacture of ultrasoft bioinspired metamaterials

The dynamic loading behavior of materials plays a vital role in various engineering applications, such as aerospace protective components, armor, marine infrastructures, and automotive crash safety. The advent of additive manufacturing technologies has enabled the design of metamaterials that exhibit exceptional mechanical performance and artificially engineered properties not found in nature. However, fabricating ideal materials that resist dynamic loading is challenging because of the complexity of dynamic mechanical processes and varying requirements across different applications. In this study, a novel hierarchical design is proposed that combines natural fiber-inspired frameworks with graphene-inspired parent structures. This design aims to produce metamaterials, with characteristics such as reduced dynamic compressive strength, high energy absorption, and programmable dynamic loading, via advanced manufacturing technologies. An additive-manufacturing-oriented digital design approach and machine learning techniques were employed to engineer the dynamic loading performance of graphene-inspired metamaterials using the bonding principles inspired by natural fibers, to facilitate the design of next-generation metamaterial for advanced manufacturing. Experimental results illustrate the significant improvements achieved with our metamaterials compared to their existing counterparts. These improvements include a decrease in dynamic compressive strength of up to 86 %, while maintaining a remarkable 682 % enhancement in energy absorption during dynamic compressions, with a 42 % reduction in the energy decay rate. A compositional design strategy and programmable dynamic compression curve methodology is proposed that enable the tailored optimization of dynamic loading behaviors without modifying the base topology of metamaterials. This research offers a promising pathway for the development of next-generation materials, engineered to withstand dynamic loadings with intelligent and programmable performances suitable for aerospace, defense, and other high-value applications. By leveraging the advantages of natural fiber-inspired structures and graphene-inspired metamaterials, this work contributes to the advancement of materials with tailored resistance to dynamic loading and opens new possibilities for intelligent dynamic loading performance.

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来源期刊
CiteScore
25.70
自引率
10.00%
发文量
66
审稿时长
18 days
期刊介绍: The International Journal of Machine Tools and Manufacture is dedicated to advancing scientific comprehension of the fundamental mechanics involved in processes and machines utilized in the manufacturing of engineering components. While the primary focus is on metals, the journal also explores applications in composites, ceramics, and other structural or functional materials. The coverage includes a diverse range of topics: - Essential mechanics of processes involving material removal, accretion, and deformation, encompassing solid, semi-solid, or particulate forms. - Significant scientific advancements in existing or new processes and machines. - In-depth characterization of workpiece materials (structure/surfaces) through advanced techniques (e.g., SEM, EDS, TEM, EBSD, AES, Raman spectroscopy) to unveil new phenomenological aspects governing manufacturing processes. - Tool design, utilization, and comprehensive studies of failure mechanisms. - Innovative concepts of machine tools, fixtures, and tool holders supported by modeling and demonstrations relevant to manufacturing processes within the journal's scope. - Novel scientific contributions exploring interactions between the machine tool, control system, software design, and processes. - Studies elucidating specific mechanisms governing niche processes (e.g., ultra-high precision, nano/atomic level manufacturing with either mechanical or non-mechanical "tools"). - Innovative approaches, underpinned by thorough scientific analysis, addressing emerging or breakthrough processes (e.g., bio-inspired manufacturing) and/or applications (e.g., ultra-high precision optics).
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