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Diagnostic Enhancements for Air Vehicle HUMS to Increase Prognostic System Effectiveness

机译:空气车辆嗡嗡声提高预后体系效果的诊断增强

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A major objective of Health and Usage Monitoring Systems (HUMS) is to transition from time based part replacement to performing maintenance actions based on evidence of need. While existing HUMS capability has demonstrated progress, the ability to diagnose component faults in their early stages is limited. This is due in part to sensitivity to signal noise, variations in environmental and operating conditions, and underutilization of prognostic techniques. Using the representative example of the fan support bearing in the oil cooler of the UH-60 helicopter, this paper discusses key areas to improve fault detection methods for health monitoring of a damaged helicopter transmission component. These include: (1) sensing and data processing tools, (2) selection and extraction of optimum condition indicators/features, (3) fusion of data at the sensor and feature levels, and (4) incipient fault detection using a Bayesian estimation framework. Results illustrating the effectiveness of these techniques are presented for fielded UH-60 bearing vibration data and laboratory test results.
机译:健康和使用监控系统(HUMS)的主要目标是从基于时间的部分更换到基于需要的证据来执行维护措施。虽然现有的HUMS能力已经证明了进展,但诊断其早期阶段的组件故障的能力是有限的。这部分是对信号噪声的敏感性,环境和运行条件的变化以及预后技术的敏感性。本文讨论了UH-60直升机的油冷却器中的风扇支撑轴承的代表性示例,讨论了改善损坏直升机传动部件的健康监测故障检测方法的关键区域。这些包括:(1)感测和数据处理工具,(2)选择和提取最佳条件指示符/特征,(3)传感器和特征级别的数据融合,以及使用贝叶斯估计框架的初期故障检测。说明这些技术的有效性的结果呈现出用于突出的UH-60轴承振动数据和实验室测试结果。

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