标度系数
材料科学
压阻效应
石墨烯
应变计
复合材料
渗透(认知心理学)
电导率
陶瓷
压力(语言学)
拉伤
纳米技术
制作
替代医学
哲学
物理化学
病理
神经科学
内科学
生物
医学
语言学
化学
作者
Chao Wu,Fan Lin,Xiaochuan Pan,Yingjun Zeng,Guochun Chen,Yanzhang Fu,Yingping He,Qinnan Chen,Daoheng Sun,Zhenyin Hai
出处
期刊:IEEE Sensors Journal
[Institute of Electrical and Electronics Engineers]
日期:2022-11-18
卷期号:22 (24): 23765-23772
被引量:9
标识
DOI:10.1109/jsen.2022.3222205
摘要
The in situ strain/stress detection of hot components in harsh environments remains a challenging task. In this study, graphene/SiCN (G-SiCN) thin-film strain gauges (TFSGs) were fabricated on alumina substrates by direct ink writing (DIW). The percolation model and the piezoresistive effect of G-SiCN composites were systematically studied. On this basis, a TFSG with high conductivity (0.1 S/cm) and high sensitivity (gauge factor (GF) 9.9) of ceramic matrix conductive composites was fabricated. The graphene/SiCN TFSG has excellent static and dynamic strain response at room temperature. Subsequently, the strain dynamic test was conducted at 400 °C, and there was no attenuation of the GF, so as to verify the high-temperature performance of the G-SiCN TFSG. Therefore, G-SiCN TFSGs provide an effective approach for the measurement of the in situ static and dynamic strain of hot components in high-temperature environments.
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