负热膨胀超材料:设计、制造和应用综述

IF 3.3 Q2 ENGINEERING, MANUFACTURING
Devashish Dubey, Anooshe Sadat Mirhakimi, M. Elbestawi
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引用次数: 0

摘要

自然界中常见的大多数材料都会随着温度的升高而膨胀。在精密仪器等实际系统和组件中,这会导致难以处理的热变形。具有随温度升高而收缩趋势的材料可与传统材料一起使用,以限制结构的整体尺寸变化。这种结构也被称为负热膨胀材料,在电子、生物医学、航空航天组件等温度变化较大的应用中至关重要。使用机械工程材料(也称为负热膨胀(NTE)机械超材料)可以实现这一目标。机械超材料是一种机械结构材料,具有天然材料中罕见的新特性。负热膨胀超材料利用其人工设计的结构来实现罕见的负热膨胀特性。增材制造技术的出现使其复杂结构的可行生产成为可能。在工业领域,激光粉末床熔融和直接能量沉积(均用于金属增材制造)等工业流程已被证明能成功制造出复杂的结构,如晶格结构和多材料组件,因此适合制造 NTE 结构。然而,本综述研究了一系列制造方法,包括增材制造技术和传统技术,并探讨了制造过程中使用的各种材料。尽管 NTE 超材料是一个突出的研究领域,但文献中缺少对这些结构材料的全面综述。本文旨在通过对这些超材料的设计、制造和前沿应用进行最先进的综述,弥补这一空白。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Negative Thermal Expansion Metamaterials: A Review of Design, Fabrication, and Applications
Most materials conventionally found in nature expand with an increase in temperature. In actual systems and assemblies like precision instruments, this can cause thermal distortions which can be difficult to handle. Materials with a tendency to shrink with an increase in temperature can be used alongside conventional materials to restrict the overall dimensional change of structures. Such structures, also called negative-thermal-expansion materials, could be crucial in applications like electronics, biomedicine, aerospace components, etc., which undergo high changes in temperature. This can be achieved using mechanically engineered materials, also called negative thermal expansion (NTE) mechanical metamaterials. Mechanical metamaterials are mechanically architected materials with novel properties that are rare in naturally occurring materials. NTE metamaterials utilize their artificially engineered architecture to attain the rare property of negative thermal expansion. The emergence of additive manufacturing has enabled the feasible production of their intricate architectures. Industrial processes such as laser powder bed fusion and direct energy deposition, both utilized in metal additive manufacturing, have proven successful in creating complex structures like lattice formations and multimaterial components in the industrial sector, rendering them suitable for manufacturing NTE structures. Nevertheless, this review examines a range of fabrication methods, encompassing both additive and traditional techniques, and explores the diverse materials used in the process. Despite NTE metamaterials being a prominent field of research, a comprehensive review of these architected materials is missing in the literature. This article aims to bridge this gap by providing a state-of-the-art review of these metamaterials, encompassing their design, fabrication, and cutting-edge applications.
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来源期刊
Journal of Manufacturing and Materials Processing
Journal of Manufacturing and Materials Processing Engineering-Industrial and Manufacturing Engineering
CiteScore
5.10
自引率
6.20%
发文量
129
审稿时长
11 weeks
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