确定皮肤弹性的经验方法:指垫与纹理表面的摩擦

Q2 Materials Science Biotribology Pub Date : 2019-06-01 DOI:10.1016/j.biotri.2019.100097
D.A. Sergachev , D.T.A. Matthews , E. van der Heide
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引用次数: 8

摘要

表面形貌显著影响触觉摩擦和感知。虽然摩擦力可以通过表面纹理减少,但由于皮肤的弹性模量高度可变,图案尺寸的选择是具有挑战性的。本研究提出了一种通过表面从粗糙状态过渡到完全接触状态来评估皮肤弹性的经验方法。为了突出接触过渡,两种纹理均匀分布相同的微凸起,但密度不同,用不同等级的硅橡胶模压成型。动态摩擦系数测量在手指垫滑动与纹理样品的正常载荷范围高达5 N。采用解析和数值相结合的接触模型解释了观察到的摩擦行为,估计了接触面积的发展,并计算了微尺度下皮肤的有效弹性模量。低密度织构明显过渡到完全接触状态,这反映在摩擦系数的发展上,而高密度织构仍然处于粗糙接触状态,摩擦值明显降低。有效杨氏模量在0.2-0.5 MPa之间。观察到的摩擦行为可以用表观接触面积和实际接触面积的变化来解释。该方法允许研究单个表面参数对有效皮肤弹性模量的影响,这对于开发具有改进触觉感知的功能表面至关重要。
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An Empirical Approach for the Determination of Skin Elasticity: Finger pad Friction against Textured Surfaces

Surface topography significantly influences tactile friction and perception. While friction forces can be reduced by surface texturing, selection of pattern dimensions is challenging due to the highly variable elastic modulus of the skin. This work proposes an empirical approach for the evaluation of the skin elasticity through surface transition from asperity to full contact state. To highlight the contact transition, two textures with evenly distributed identical micro asperities, but varying density, were moulded with several grades of silicone rubber. Dynamic friction coefficient measurements were performed during finger pad sliding against the textured samples with a range of normal loads up to 5 N. A combination of analytical and numerical contact models is used to explain the observed friction behaviour, estimate the development of contact area and calculate the effective elastic modulus of the skin at the micro-scale. Low density textures clearly indicate the transition to the full contact state, which is reflected in friction coefficient development, while high density textures remain in an asperity contact state, with significantly lower friction values. The effective Young's modulus is hereby estimated in the range of 0.2–0.5 MPa. Observed frictional behaviour is explained by the change in the apparent and real contact areas. The presented approach allows to study the influence of individual surface parameters on effective skin elastic modulus, which is essential for the development of functional surfaces with improved tactile perception.

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来源期刊
Biotribology
Biotribology Materials Science-Surfaces, Coatings and Films
CiteScore
4.20
自引率
0.00%
发文量
17
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