A homogenization method incorporating surface effect for thin metamaterial structure

IF 5.7 1区 工程技术 Q1 ENGINEERING, MULTIDISCIPLINARY International Journal of Engineering Science Pub Date : 2024-05-20 DOI:10.1016/j.ijengsci.2024.104093
Shuo Li, Li Li
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Abstract

Strong surface elasticity has been only found in nanoscale materials due to their large surface-to-volume ratio. In this paper, at the macroscale, the strong surface elasticity is revealed in thin metamaterial structures. Moreover, the metamaterial structures filled with complex microstructures often need computationally prohibitive resources if the fully-resolved microstructures are modeled using high-fidelity approaches. Based on the revealed surface elasticity, a surface-based efficient yet accurate homogenization method is developed for thin metamaterial structures. This study explores the role that microstructure plays in determining the macroscopic properties of a metamaterial continuum and reveals the occurrence of the size-dependent surface effect that is strictly related to the microstructure configuration. The contribution of surface elasticity to the mechanical properties of thin metamaterial structures cannot be neglected, particularly when the size of microstructures is comparable to their thickness. The coupling effect of intrinsic length determined by microstructure and extrinsic length (the thickness) on surface elasticity is investigated using the homogenization method. The intrinsic length can be calibrated by the size-dependent effective elasticity tensor. The strength of surface elasticity is determined by the intrinsic length with a specific thickness. The contribution of surface elasticity to the effective elasticity tensor can be determined by the difference between intrinsic length and extrinsic length. Finally, a simple yet representative metamaterial truss under tension is used to illustrate the application of the homogenization method. Our findings not only provide mechanical insights into metamaterial structures but also offer a surface-based computational method for metamaterial structures filled with complex microstructures.

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结合表面效应的超材料薄结构均质化方法
由于纳米级材料的表面与体积之比很大,因此只有在纳米级材料中才能发现强表面弹性。本文在宏观尺度上揭示了超材料薄结构中的强表面弹性。此外,充满复杂微结构的超材料结构,如果采用高保真方法建立完全解析的微结构模型,往往需要高昂的计算资源。基于揭示的表面弹性,针对超材料薄结构开发了一种基于表面的高效而精确的均质化方法。这项研究探讨了微结构在决定超材料连续体宏观特性中的作用,并揭示了与微结构配置密切相关的尺寸依赖性表面效应。表面弹性对超薄材料结构力学特性的贡献不容忽视,尤其是当微结构的尺寸与其厚度相当时。本文采用均质化方法研究了由微结构决定的本征长度和外征长度(厚度)对表面弹性的耦合效应。本征长度可通过与尺寸相关的有效弹性张量进行校准。表面弹性的强度由具有特定厚度的本征长度决定。表面弹性对有效弹性张量的贡献可通过本征长度和外征长度之差确定。最后,我们用一个简单但具有代表性的受拉超材料桁架来说明均质化方法的应用。我们的研究结果不仅为超材料结构提供了力学见解,还为充满复杂微结构的超材料结构提供了一种基于表面的计算方法。
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来源期刊
International Journal of Engineering Science
International Journal of Engineering Science 工程技术-工程:综合
CiteScore
11.80
自引率
16.70%
发文量
86
审稿时长
45 days
期刊介绍: The International Journal of Engineering Science is not limited to a specific aspect of science and engineering but is instead devoted to a wide range of subfields in the engineering sciences. While it encourages a broad spectrum of contribution in the engineering sciences, its core interest lies in issues concerning material modeling and response. Articles of interdisciplinary nature are particularly welcome. The primary goal of the new editors is to maintain high quality of publications. There will be a commitment to expediting the time taken for the publication of the papers. The articles that are sent for reviews will have names of the authors deleted with a view towards enhancing the objectivity and fairness of the review process. Articles that are devoted to the purely mathematical aspects without a discussion of the physical implications of the results or the consideration of specific examples are discouraged. Articles concerning material science should not be limited merely to a description and recording of observations but should contain theoretical or quantitative discussion of the results.
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