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本文引用的文献

1
Effects of surface tension on the adhesive contact of a rigid sphere to a compliant substrate.表面张力对刚性球体与弹性基底黏附接触的影响。
Soft Matter. 2014 Jul 14;10(26):4625-32. doi: 10.1039/c4sm00216d.
2
Surface tension and contact with soft elastic solids.表面张力与柔软弹性固体的接触。
Nat Commun. 2013;4:2728. doi: 10.1038/ncomms3728.
3
Surface tension, surface energy, and chemical potential due to their difference.由于它们的差异,表面张力、表面能和化学势。
Langmuir. 2013 Sep 10;29(36):11310-6. doi: 10.1021/la400937r. Epub 2013 Aug 26.
4
Direct measurement of the surface tension of a soft elastic hydrogel: exploration of elastocapillary instability in adhesion.直接测量软弹性水凝胶的表面张力:粘附中弹性毛细不稳定性的探索。
Langmuir. 2013 Jun 11;29(23):6926-35. doi: 10.1021/la401115j. Epub 2013 May 24.
5
Universal deformation of soft substrates near a contact line and the direct measurement of solid surface stresses.接触线附近软基底的普遍变形和固体表面应力的直接测量。
Phys Rev Lett. 2013 Feb 8;110(6):066103. doi: 10.1103/PhysRevLett.110.066103. Epub 2013 Feb 7.
6
Contact mechanics of nanoparticles.纳米颗粒的接触力学。
Langmuir. 2012 Jul 24;28(29):10881-90. doi: 10.1021/la301657c. Epub 2012 Jul 16.
7
Adhesion of nanoparticles.纳米颗粒的附着。
Langmuir. 2010 Aug 3;26(15):12973-9. doi: 10.1021/la101977c.
8
Model-independent extraction of adhesion energy from indentation experiments.从压痕实验中进行与模型无关的粘附能提取。
Langmuir. 2008 Sep 2;24(17):9401-9. doi: 10.1021/la800817x. Epub 2008 Jul 29.

具有表面张力和附着力的刚性球体压入弹性基底。

Indentation of a rigid sphere into an elastic substrate with surface tension and adhesion.

作者信息

Hui Chung-Yuen, Liu Tianshu, Salez Thomas, Raphael Elie, Jagota Anand

机构信息

Field of Theoretical and Applied Mechanics, Department of Mechanical and Aerospace Engineering , Cornell University , Ithaca, NY 14850, USA.

School of Engineering and Applied Sciences , Harvard University , Cambridge, MA 02138, USA.

出版信息

Proc Math Phys Eng Sci. 2015 Mar 8;471(2175):20140727. doi: 10.1098/rspa.2014.0727.

DOI:10.1098/rspa.2014.0727
PMID:25792953
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC4353052/
Abstract

The surface tension of compliant materials such as gels provides resistance to deformation in addition to and sometimes surpassing that owing to elasticity. This paper studies how surface tension changes the contact mechanics of a small hard sphere indenting a soft elastic substrate. Previous studies have examined the special case where the external load is zero, so contact is driven by adhesion alone. Here, we tackle the much more complicated problem where, in addition to adhesion, deformation is driven by an indentation force. We present an exact solution based on small strain theory. The relation between indentation force (displacement) and contact radius is found to depend on a single dimensionless parameter: =()((9/4)), where and are the surface tension and shear modulus of the substrate, is the sphere radius and is the interfacial work of adhesion. Our theory reduces to the Johnson-Kendall-Roberts (JKR) theory and Young-Dupre equation in the limits of small and large , respectively, and compares well with existing experimental data. Our results show that, although surface tension can significantly affect the indentation force, the magnitude of the pull-off load in the partial wetting liquid-like limit is reduced only by one-third compared with the JKR limit and the pull-off behaviour is completely determined by .

摘要

诸如凝胶之类的柔顺材料的表面张力,除了提供因弹性产生的阻力外,有时还会超过弹性阻力,从而对材料变形产生阻力。本文研究了表面张力如何改变小硬球压入软弹性基底时的接触力学。先前的研究考察了外部载荷为零的特殊情况,即接触仅由附着力驱动。在这里,我们处理一个更为复杂的问题,即除了附着力外,变形还由压入力驱动。我们基于小应变理论给出了一个精确解。发现压入力(位移)与接触半径之间的关系取决于一个单一的无量纲参数:=()((9/4)),其中和分别是基底的表面张力和剪切模量,是球体半径,是粘附界面功。我们的理论在小和大的极限情况下分别简化为约翰逊 - 肯德尔 - 罗伯茨(JKR)理论和杨氏 - 杜普雷方程,并且与现有的实验数据比较吻合。我们的结果表明,尽管表面张力会显著影响压入力,但在部分润湿的类液体极限情况下,拉脱载荷的大小与JKR极限相比仅降低了三分之一,并且拉脱行为完全由决定。