Design and Simulation of a Micro Hotplate Using COMSOL Multiphysics for MEMS Based Gas Sensor

S. Joy, Jobin K. Antony
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引用次数: 14

Abstract

Micro Hotplate (MHP) is one of the main components in micro-sensors, especially in gas sensors. A MHP should have low power consumption, low thermal mass and better temperature uniformity. The metal oxide gas sensors utilize the properties of surface adsorption to detect changes in resistance as a function of varying concentration of different gases. In order to detect to detect the resistive changes, the temperature must be in the requisite temperature range over the heater area. The sensitivity and response time of the sensor are dependent on the operating temperature of the MHP. Making proper design is of critical importance. In this paper, the geometric optimization of the heater structure to achieve high temperature uniformity by performing analysis using COMSOL Multiphysics 5.0, a Finite Element Analysis (FEA) package is done. Electro-Thermo-Mechanical(ETM) analysis is done to review the temperature and stress distribution over the MHP. Two dimensional structure of five different patterns of MHP, namely single Meander, double Meander, fan shape, rectangle shape, and porous structure are designed and simulations are done. Their temperature profiles are compared and porous structure is found to have low power consumption and better temperature uniformity. Three dimensional design and simulation of Meander and porous structures are also done and their temperature and displacement profiles are compared. The effect of various materials and thickness of heating element on the temperature, displacement, and power consumption of the MHP is evaluated. The porous structure is found to be best suitable for designing a gas sensor with high sensitivity and low power consumption. Then a gas sensor with high sensitivity is designed using this porous structure of MHP and ETM simulation is done.
基于COMSOL Multiphysics的微热板MEMS气体传感器设计与仿真
微热板(MHP)是微传感器尤其是气体传感器的主要部件之一。MHP应具有低功耗、低热质量和较好的温度均匀性。金属氧化物气体传感器利用表面吸附的特性来检测电阻的变化,作为不同气体浓度变化的函数。为了检测到电阻的变化,温度必须在加热器区域的必要温度范围内。传感器的灵敏度和响应时间取决于MHP的工作温度。适当的设计是至关重要的。本文采用有限元分析软件COMSOL Multiphysics 5.0对加热器结构进行几何优化,以达到高温均匀性。通过电-热-机械(ETM)分析,考察了MHP上的温度和应力分布。设计了单曲、双曲、扇形、矩形和多孔五种不同结构的MHP二维结构,并进行了仿真。比较了它们的温度分布,发现多孔结构具有低功耗和较好的温度均匀性。对弯曲结构和多孔结构进行了三维设计和仿真,并对其温度和位移曲线进行了比较。评估了不同材料和加热元件厚度对MHP的温度、位移和功耗的影响。发现多孔结构最适合设计高灵敏度、低功耗的气体传感器。然后利用该多孔结构设计了高灵敏度的气体传感器,并进行了ETM仿真。
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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