材料科学
电容感应
碳化硅
灵敏度(控制系统)
硅带隙温度传感器
陶瓷
压力传感器
光电子学
基质(水族馆)
电容
磁滞
大气温度范围
硅
电子工程
电气工程
机械工程
复合材料
电压
工程类
分压器
化学
物理化学
气象学
海洋学
量子力学
地质学
跌落电压
物理
电极
作者
Qi Zhou,Xiyu Liu,Shengting Luo,Xingfang Jiang,Di Yang,Wulong Yuan
标识
DOI:10.1109/jsen.2023.3329367
摘要
In this study, a capacitive pressure sensor based on silicon carbide is designed and simulated. This sensor is suitable for extremely harsh environments such as high hydraulic pressure and high temperature. This study aims to overcome the challenges faced by conventional silicon capacitive pressure sensors that suffer from small range and high-temperature intolerance. The sensor consists of an aluminum nitride (AlN) ceramic substrate and a silicon carbide sensing chip encapsulated on the substrate. It utilizes a cylindrical sandwich structure based on a vacuum cavity to ensure high sensitivity and low nonlinearity of the output capacitance. The key structural parameters of the new device were optimized using Taguchi’s method to achieve the optimal dimensions. In Section IV-C , the temperature characteristics of the sensor are investigated based on the optimal structural dimensions. The results yield a maximum sensitivity of 1.34 fF/MPa for the novel capacitive pressure sensor with a low nonlinearity of 0.094 FS over the pressure range of 0–150 MPa when temperature effects are not considered. When temperature effects are considered, the sensitivity of the sensor increases with operating temperature. At an operating temperature of 20 °C and a bonding temperature of 70 °C, the sensor has a sensitivity of 1.25 fF/MPa and a nonlinearity of 0.089 FS. In addition, a hysteresis of 0.35% FS and a repeatability of 0.02% FS were obtained based on the results of three pressure cycles.
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