表皮脊在触觉传感中的有限元分析

N. Syamimi, S. Yahud
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摘要

人体机械感受器是生物触觉传感器,为体感觉系统提供触觉信息。一种受生物启发的触觉传感器复制了人类指尖的结构和设计,以产生与人类机械感受器相似的反应。为了获得仿生触觉传感器的最佳设计方案,提出了研究不同形状和高度的人造表皮脊的方法。采用COMSOL软件对模型进行有限元分析。人造皮肤被建模为一种几乎可压缩的线性超弹性材料。表皮脊有中心圆形、中心方形、中心矩形、半圆形和矩形五种不同的形状,各有六种不同的高度。测试的表皮脊高度分别为100、110、150、170、210、250 μm。在凸体顶面z、x方向施加1 N/m2的边界荷载作为法向应力和剪应力。模型的基础是约束,在整个模拟过程中保持相同的边界条件。通过模拟来确定传感器在表皮脊下皮肤区域的合适放置深度。对不同形状和高度的模拟结果进行了比较。模拟结果与经历最大应力的区域,以验证所提出的表皮脊模型。模拟Von Mises应力分布的最佳表皮脊为高210 μm的半圆形模型,其值为0.8246 N/m2。3D切割线的最佳传感器位置位于模型顶面以下400 μm处。所提出的人造表皮脊指皮肤具有最佳的表皮脊形状和高度,易于制作为仿生触觉传感器。
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Finite Element Analysis of epidermal ridges in tactile sensing application
Human mechanoreceptors are the biological tactile transducers, providing tactile information to the somatosensory system. A biologically inspired tactile sensor replicates structural and design of the human fingertip to produce similar response to the human mechanoreceptors. The study of different shapes and heights of an artificial epidermal ridge is proposed in order to obtain the optimum design of a bio-inspired tactile sensor. The Finite Element Analysis model was conducted using COMSOL software. The artificial skin was modelled as a nearly compressible, linear hyperelastic material. There were five different shapes of the epidermal ridge which are the centered circle, centered square, centered rectangle, semi-circular and rectangular ridge each with six different heights. The heights of epidermal ridges tested are 100, 110, 150, 170, 210, 250 μm. A boundary load of 1 N/m2 was applied on the top surface of the protrusion in z and x direction for normal and shear stress. The base of the model was constraint to maintain the same boundary conditions throughout all simulation. Simulations were done to determine the suitable depth for sensor placement in the skin area under the epidermal ridge. The simulated result for all different shape and height were compared. Simulation results with areas that experienced the highest stress were given to validate the proposed epidermal ridge model. The best epidermal ridge identified is the semi-circular model with 210 μm height with the value of 0.8246 N/m2 simulated Von Mises stress distribution. The optimum sensor placement with cut line 3D is at 400 μm below the model top surface. The proposed artificial epidermal ridge finger skin with optimum shape and height of the epidermal ridge are readily applicable to be fabricated as a bio-inspired tactile sensor.
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