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Full-Scale Field Evaluation of Microelectromechanical System-Based Biaxial Strain Transducer and Its Application in Fatigue Analysis

机译:基于微机电系统的双轴应变传感器的全尺寸现场评估及其在疲劳分析中的应用

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摘要

The objective of this research is to develop a microelectromechanical system (MEMS)-based intelligent hybrid Biaxial Strain Transducer (BiAST) sensor for predicting railroad fatigue life based on strain history. The developed BiAST prototype was deployed to collect real-time strain data from the full-scale test track at the Transportation Technology Center (TTCI), near Pueblo, Colorado. The collected strain data were analyzed using the "Binner" fatigue analysis program for counting the load cycles and estimating the fatigue life of a rail structure. Field-testing results of the BiAST were used to evaluate the BiAST prototype with respect to its repeatability, accuracy, and hybridization. BiAST was effective in detecting the dynamic response of a particular wheel and spurious overload events. BiAST can be used to detect passing wheels, train speed, and track condition.
机译:这项研究的目的是开发一种基于微机电系统(MEMS)的智能混合双轴应变传感器(BiAST)传感器,用于根据应变历史预测铁路疲劳寿命。部署了已开发的BiAST原型,以从科罗拉多州普韦布洛附近的运输技术中心(TTCI)的全面测试轨道收集实时应变数据。使用“ Binner”疲劳分析程序对收集的应变数据进行分析,以计算载荷循环并估算轨道结构的疲劳寿命。 BiAST的现场测试结果用于评估BiAST原型的可重复性,准确性和杂交性。 BiAST有效地检测了特定车轮的动态响应和虚假过载事件。 BiAST可用于检测经过的车轮,火车速度和轨道状况。

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