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Fault detection of helicopter gearboxes using the multi-valued influence matrix method

机译:基于多值影响矩阵法的直升机变速箱故障检测

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摘要

In this paper we investigate the effectiveness of a pattern classifying fault detection system that is designed to cope with the variability of fault signatures inherent in helicopter gearboxes. For detection, the measurements are monitored on-line and flagged upon the detection of abnormalities, so that they can be attributed to a faulty or normal case. As such, the detection system is composed of two components, a quantization matrix to flag the measurements, and a multi-valued influence matrix (MVIM) that represents the behavior of measurements during normal operation and at fault instances. Both the quantization matrix and influence matrix are tuned during a training session so as to minimize the error in detection. To demonstrate the effectiveness of this detection system, it was applied to vibration measurements collected from a helicopter gearbox during normal operation and at various fault instances. The results indicate that the MVIM method provides excellent results when the full range of faults effects on the measurements are included in the training set.
机译:在本文中,我们研究了一种模式分类故障检测系统的有效性,该系统旨在应对直升机齿轮箱固有的故障特征的变化。为了进行检测,对测量进行在线监视,并在检测到异常时进行标记,以便将其归因于故障或正常情况。这样,检测系统由两个组件组成:一个用于标记测量值的量化矩阵,以及一个代表正常运行期间和故障情况下的测量行为的多值影响矩阵(MVIM)。在训练期间对量化矩阵和影响矩阵都进行了调整,以使检测错误最小化。为了证明该检测系统的有效性,将其应用于在正常操作期间和各种故障情况下从直升机变速箱收集的振动测量值。结果表明,当训练集中包含所有故障对测量的影响时,MVIM方法可提供出色的结果。

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