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A Computational Model for Nanoscale Adhesion between Deformable Solids and Its Application to Gecko Adhesion

机译:可变形固体之间纳米尺度粘附的计算模型及其在壁虎粘附中的应用

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摘要

A computational contact formulation is presented that is suitable for simulating contact interaction problems at very small length scales. The contact model is based on the coarse-graining of the intermolecular forces between neighboring bodies, like van der Waals attraction, into an effective continuum contact description. The model is cast into a nonlinear 3D finite element implementation that is capable of integrating the challenges encountered in the modeling of adhesive systems. The contact model is then applied to the dynamic modeling and simulation of the adhesion and deformation of a gecko seta based on a 3D multiscale approach. The approach spans six orders of magnitude and combines three distinct modeling levels, that describe the effective adhesion behavior at the seta scale, the spatula scale and the molecular scale. The rate-dependent pull-off behavior of adhering setae and spatulae is computed and it is shown that the model is successful in capturing pull-off forces that have been observed experimentally.
机译:提出了一种计算接触公式,适用于在很小的长度尺度上模拟接触相互作用问题。接触模型基于相邻物体之间的分子间力的粗粒度,例如范德华力吸引,形成有效的连续接触描述。该模型被植入到非线性3D有限元实现中,该实现能够集成粘合剂系统建模中遇到的挑战。然后将接触模型应用于基于3D多尺度方法的壁虎seta附着和变形的动态建模和仿真。该方法跨越六个数量级,并结合了三个不同的建模级别,这些级别描述了seta尺度,刮刀尺度和分子尺度的有效附着行为。计算了附着的刚毛和刮刀的速率依赖性拉脱行为,结果表明该模型成功地捕获了实验观察到的拉脱力。

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