Contact behaviors involving a nanobeam with surface effect by a rigid indenter

IF 1.7 4区 工程技术 Q3 MATERIALS SCIENCE, MULTIDISCIPLINARY
Liyuan Wang, Hongmei Wu, Zhiying Ou
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Abstract

In this study, we present a novel surface model that utilizes surface energy density to predict the surface effect in nanobeam contact problems. To address the issue of a finite-length elastic nanobeam being indented by a rigid cylindrical indenter, we propose an equivalent substitution method. This method allows us to formulate analytical relations between the load and contact half-width for two different boundary cases. The explicit expressions of the contact-zone width, the pressure distribution in the contact zone, the deflection outside the contact zone, and the load–displacement relation are obtained for the nanobeam with surface effect and are compared with classical results in detail. The results show that the influence of the surface effect is very significant for nanobeam contact behavior, especially when the half-width of the contact zone increases and the contact zone becomes two independent symmetric strips. It is also found that the length-height ratio of nanobeam and the end support conditions have a fairly obvious effect on the normalized pressure distribution, which deviates significantly from the one predicted by the classical results due to the surface effect. However, for a given beam length and indenter radius, the ratio of the width of the contact zone to the beam thickness is almost constant, independent of the indenter load and beam boundary conditions. Meanwhile, the model predicts that the contact pressure distribution after the normalization of the average indentation pressure is almost independent of the indentation load and beam boundary conditions, but obviously depends on the surface effect parameters. The present method and result should be helpful not only to the measurement of mechanical properties of the indentation nanobeam but also to the design of the nanobeam-based devices.
具有表面效应的纳米梁与刚性压头的接触行为
在这项研究中,我们提出了一个新的表面模型,利用表面能密度来预测纳米梁接触问题中的表面效应。为了解决有限长弹性纳米梁被刚性圆柱压头压痕的问题,我们提出了一种等效替代方法。这种方法使我们能够在两种不同的边界情况下,建立载荷与接触半宽度之间的解析关系。得到了考虑表面效应的纳米梁接触区宽度、接触区压力分布、接触区外挠度以及载荷-位移关系的显式表达式,并与经典结果进行了详细比较。结果表明,表面效应对纳米梁接触行为的影响非常显著,特别是当接触区半宽度增大,接触区变成两条独立的对称条带时。研究还发现,纳米梁的长高比和端部支护条件对归一化压力分布有相当明显的影响,由于表面效应的影响,归一化压力分布与经典结果的预测有明显偏差。然而,对于给定的梁长度和压头半径,接触区宽度与梁厚度之比几乎是恒定的,与压头载荷和梁边界条件无关。同时,该模型预测平均压痕压力归一化后的接触压力分布几乎与压痕载荷和梁边界条件无关,但明显依赖于表面效应参数。本文的方法和结果不仅对压痕纳米梁的力学性能的测量有指导意义,而且对基于纳米梁的器件的设计也有指导意义。
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来源期刊
Mathematics and Mechanics of Solids
Mathematics and Mechanics of Solids 工程技术-材料科学:综合
CiteScore
4.80
自引率
19.20%
发文量
159
审稿时长
1 months
期刊介绍: Mathematics and Mechanics of Solids is an international peer-reviewed journal that publishes the highest quality original innovative research in solid mechanics and materials science. The central aim of MMS is to publish original, well-written and self-contained research that elucidates the mechanical behaviour of solids with particular emphasis on mathematical principles. This journal is a member of the Committee on Publication Ethics (COPE).
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