Numerical simulation analysis of flexible capacitive pressure sensors based on porous pyramidal microstructures

IF 2.2 4区 工程技术 Q3 ENGINEERING, ELECTRICAL & ELECTRONIC
Reza Javidi, Mahdi Moghimi Zand, Sara Alizadeh Majd
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引用次数: 0

Abstract

Flexible wearable pressure sensors with high sensitivity have a wide range of applications in the field of healthcare monitoring, e-skin technology, robotic limbs, and other human–machine interaction under low pressures. For very low pressures, a sensor with high sensitivity and bulky, expensive measuring equipment is required to obtain the output signal. The incorporation of a micro-pyramidal porous dielectric section can considerably enhance the sensitivity of the capacitance-based pressure sensor. This article has employed a finite element method-based three-dimensional simulation to assess the performance of the porous microstructured capacitive pressure sensor (pmcps). The numerical results revealed a high level of agreement with the experimental data. To simplify the design and fabrication of the sensor with optimal performance, the effects of parameters such as sensor dielectric constant, dielectric layer porosity, base length, tip width, height, and inter-microstructural spacing of porous micro-pyramids were investigated using the response surface methodology. Sensitivity analysis showed that the tip width of the micro-pyramid has the greatest effect on sensor sensitivity and the least effect on the initial capacitance. Finally, equations were proposed for predicting the initial capacitance and sensor sensitivity based on the geometric parameters of the porous micro-pyramid and intrinsic properties of the dielectric section using three-dimensional finite element simulation to facilitate the ability to predict the fabrication and design process of the pmcps and optimize its performance for different applications.

基于多孔金字塔微结构的柔性电容式压力传感器的数值模拟分析
摘要 具有高灵敏度的柔性可穿戴压力传感器在医疗保健监测、电子皮肤技术、机器人肢体和其他低压下的人机交互领域有着广泛的应用。对于极低的压力,需要高灵敏度的传感器和笨重昂贵的测量设备才能获得输出信号。加入微金字塔多孔介质部分可以大大提高电容式压力传感器的灵敏度。本文采用基于有限元法的三维模拟来评估多孔微结构电容式压力传感器(pmcps)的性能。数值结果显示与实验数据高度吻合。为了简化具有最佳性能的传感器的设计和制造,利用响应面方法研究了传感器介电常数、介质层孔隙率、基底长度、尖端宽度、高度和多孔微结构金字塔的微结构间距等参数的影响。灵敏度分析表明,微金字塔顶端宽度对传感器灵敏度的影响最大,而对初始电容的影响最小。最后,根据多孔微金字塔的几何参数和介电部分的固有特性,利用三维有限元模拟提出了预测初始电容和传感器灵敏度的方程,从而有助于预测 pmcps 的制造和设计过程,并针对不同应用优化其性能。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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来源期刊
Journal of Computational Electronics
Journal of Computational Electronics ENGINEERING, ELECTRICAL & ELECTRONIC-PHYSICS, APPLIED
CiteScore
4.50
自引率
4.80%
发文量
142
审稿时长
>12 weeks
期刊介绍: he Journal of Computational Electronics brings together research on all aspects of modeling and simulation of modern electronics. This includes optical, electronic, mechanical, and quantum mechanical aspects, as well as research on the underlying mathematical algorithms and computational details. The related areas of energy conversion/storage and of molecular and biological systems, in which the thrust is on the charge transport, electronic, mechanical, and optical properties, are also covered. In particular, we encourage manuscripts dealing with device simulation; with optical and optoelectronic systems and photonics; with energy storage (e.g. batteries, fuel cells) and harvesting (e.g. photovoltaic), with simulation of circuits, VLSI layout, logic and architecture (based on, for example, CMOS devices, quantum-cellular automata, QBITs, or single-electron transistors); with electromagnetic simulations (such as microwave electronics and components); or with molecular and biological systems. However, in all these cases, the submitted manuscripts should explicitly address the electronic properties of the relevant systems, materials, or devices and/or present novel contributions to the physical models, computational strategies, or numerical algorithms.
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