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恒流激励下力敏材料敏感场与应力场反演的三维分布

Three Dimensional Distribution of Sensitive Field and Stress Field Inversion of Force Sensitive Materials under Constant Current Excitation.

作者信息

Zhao Shuanfeng, Liu Min, Guo Wei, Zhang Chuanwei

机构信息

School of Mechanical Engineering, Xi'an University of Science and Technology, Xi'an 710054, China.

出版信息

Sensors (Basel). 2018 Feb 28;18(3):722. doi: 10.3390/s18030722.

Abstract

Force sensitive conductive composite materials are functional materials which can be used as the sensitive material of force sensors. However, the existing sensors only use one-dimensional electrical properties of force sensitive conductive materials. Even in tactile sensors, the measurement of contact pressure is achieved by large-scale arrays and the units of a large-scale array are also based on the one-dimensional electrical properties of force sensitive materials. The main contribution of this work is to study the three-dimensional electrical properties and the inversion method of three-dimensional stress field of a force sensitive material (conductive rubber), which pushes the application of force sensitive material from one dimensional to three-dimensional. First, the mathematical model of the conductive rubber current field distribution under a constant force is established by the effective medium theory, and the current field distribution model of conductive rubber with different geometry, conductive rubber content and conductive rubber relaxation parameters is deduced. Secondly, the inversion method of the three-dimensional stress field of conductive rubber is established, which provides a theoretical basis for the design of a new tactile sensor, three-dimensional stress field and space force based on force sensitive materials.

摘要

力敏导电复合材料是可作为力传感器敏感材料的功能材料。然而,现有的传感器仅利用力敏导电材料的一维电学特性。即使在触觉传感器中,接触压力的测量也是通过大规模阵列实现的,并且大规模阵列的单元同样基于力敏材料的一维电学特性。这项工作的主要贡献在于研究力敏材料(导电橡胶)的三维电学特性以及三维应力场的反演方法,这将力敏材料的应用从一维推进到三维。首先,通过有效介质理论建立了恒定力作用下导电橡胶电流场分布的数学模型,并推导了不同几何形状、导电橡胶含量和导电橡胶松弛参数的导电橡胶电流场分布模型。其次,建立了导电橡胶三维应力场的反演方法,为基于力敏材料的新型触觉传感器、三维应力场和空间力的设计提供了理论依据。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/e017/5876877/503b566ea427/sensors-18-00722-g0A1.jpg

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