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横向梯度材料中摩擦减小的证据。

Evidence of friction reduction in laterally graded materials.

作者信息

Guarino Roberto, Costagliola Gianluca, Bosia Federico, Pugno Nicola Maria

机构信息

Laboratory of Bio-Inspired & Graphene Nanomechanics, Department of Civil, Environmental and Mechanical Engineering, University of Trento, Via Mesiano 77, 38123 Trento, Italy.

Department of Physics and Nanostructured Interfaces and Surfaces Centre, University of Torino, Via Pietro Giuria 1, 10125 Torino, Italy.

出版信息

Beilstein J Nanotechnol. 2018 Sep 13;9:2443-2456. doi: 10.3762/bjnano.9.229. eCollection 2018.

Abstract

In many biological structures, optimized mechanical properties are obtained through complex structural organization involving multiple constituents, functional grading and hierarchical organization. In the case of biological surfaces, the possibility to modify the frictional and adhesive behaviour can also be achieved by exploiting a grading of the material properties. In this paper, we investigate this possibility by considering the frictional sliding of elastic surfaces in the presence of a spatial variation of the Young's modulus and the local friction coefficients. Using finite-element simulations and a two-dimensional spring-block model, we investigate how graded material properties affect the macroscopic frictional behaviour, in particular, static friction values and the transition from static to dynamic friction. The results suggest that the graded material properties can be exploited to reduce static friction with respect to the corresponding non-graded material and to tune it to desired values, opening possibilities for the design of bio-inspired surfaces with tailor-made tribological properties.

摘要

在许多生物结构中,通过涉及多种成分、功能分级和层次组织的复杂结构组织来获得优化的力学性能。就生物表面而言,还可以通过利用材料性能的分级来改变摩擦和粘附行为。在本文中,我们通过考虑杨氏模量和局部摩擦系数存在空间变化时弹性表面的摩擦滑动来研究这种可能性。使用有限元模拟和二维弹簧块模型,我们研究分级材料性能如何影响宏观摩擦行为,特别是静摩擦值以及从静摩擦到动摩擦的转变。结果表明,相对于相应的非分级材料,可以利用分级材料性能来降低静摩擦并将其调整到所需值,为设计具有定制摩擦学性能的仿生表面开辟了可能性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/8cdb/6142729/606b4816dc1b/Beilstein_J_Nanotechnol-09-2443-g002.jpg

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