首页> 外文会议>ASME(American Society of Mechanical Engineers) Turbo Expo vol.5; 20070514-17; Montreal(CA) >A COMPREHENSIVE HIGH FREQUENCY VIBRATION MONITORING SYSTEM FOR INCIPIENT FAULT DETECTION AND ISOLATION OF GEARS, BEARINGS AND SHAFTS/COUPLINGS IN TURBINE ENGINES AND ACCESSORIES
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A COMPREHENSIVE HIGH FREQUENCY VIBRATION MONITORING SYSTEM FOR INCIPIENT FAULT DETECTION AND ISOLATION OF GEARS, BEARINGS AND SHAFTS/COUPLINGS IN TURBINE ENGINES AND ACCESSORIES

机译:涡轮发动机和附件中齿轮,轴承,轴/联轴器的早期故障检测和隔离的综合高频振动监测系统

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The authors have developed a comprehensive, high frequency (1-100 kHz) vibration monitoring system for incipient fault detection of critical rotating components within engines, drive trains, and generators. The high frequency system collects and analyzes vibration data to estimate the current condition of rotary components; detects and isolates anomalous behavior to a particular bearing, gear, shaft or coupling; and assesses the severity of the fault in the isolated faulty component. The system uses either single/multiple accelerometers, mounted on externally accessible locations, or non-contact vibration monitoring sensors to collect data. While there are published instances of vibration monitoring algorithms for bearing or gear fault detection, there are no comprehensive techniques that provide incipient fault detection and isolation in complex machinery with multiple rotary and drive train components. The author's techniques provide an algorithm-driven system that fulfills this need. The concept at the core of high frequency vibration monitoring for incipient fault detection is the ability of high frequency regions of the signal to transmit information related to component failures during the fault inception stage. Unlike high frequency regions, the lower frequency regions of vibration data have a high machinery noise floor that often masks the incipient fault signature. The low frequency signal reacts to the fault only when fault levels are high enough for the signal to rise over the machinery noise floor. The developed vibration monitoring system therefore utilizes high frequency vibration data to provide a quantitative assessment of the current health of each component. The system sequentially ascertains sensor validity, extracts multiple statistical, time, and frequency domain features from broadband data, fuses these features, and acts upon this information to isolate faults in a particular gear, bearing, or shaft. The techniques are based on concepts like mechanical ransmissibility of structures and sensors, statistical signal processing, demodulation, time synchronous averaging, artificial intelligence, failure modes, and faulty vs. healthy vibration behavior for rotating components. The system exploits common aspects of vibration monitoring algorithms, as applicable to all of the monitored components, to reduce algorithm complexity and computational cost. To isolate anomalous behavior to a particular gear, bearing, shaft, or coupling, the system uses design information and knowledge of the degradation process in these components. This system can function with Commercial Off-The-Shelf (COTS) data acquisition and processing systems or can be adapted to aircraft on-board hardware. The authors have successfully tested this system on a wide variety of test stands and aircraft engine test cells through seeded fault and fault progression tests, as described herein. Verification and Validation (V&V) of the algorithms is also addressed.
机译:作者开发了一种全面的高频(1-100 kHz)振动监测系统,用于对发动机,传动系统和发电机中的关键旋转组件进行早期故障检测。高频系统收集并分析振动数据,以估计旋转部件的当前状况;检测并隔离特定轴承,齿轮,轴或联轴器的异常行为;并评估隔离的故障组件中故障的严重性。该系统使用安装在外部可访问位置的单个/多个加速度计或非接触式振动监测传感器来收集数据。尽管已经发布了用于轴承或齿轮故障检测的振动监测算法实例,但在具有多个旋转和传动系组件的复杂机械中,尚没有综合的技术可以提供早期故障检测和隔离。作者的技术提供了满足此需求的算法驱动系统。用于早期故障检测的高频振动监测的核心概念是信号的高频区域在故障发生阶段传输与组件故障相关的信息的能力。与高频区域不同,振动数据的低频区域具有较高的机械本底噪声,通常会掩盖初期的故障特征。仅当故障级别足够高以使信号上升到机械本底噪声以上时,低频信号才会对故障做出反应。因此,开发的振动监控系统利用高频振动数据对每个组件的当前运行状况进行定量评估。该系统依次确定传感器的有效性,从宽带数据中提取多个统计,时域和频域特征,融合这些特征,并根据此信息进行操作,以隔离特定齿轮,轴承或轴的故障。这些技术基于诸如结构和传感器的机械可传递性,统计信号处理,解调,时间同步平均,人工智能,故障模式以及旋转组件的故障与健康振动行为等概念。该系统利用了振动监视算法的共同方面,适用于所有受监视的组件,以减少算法复杂性和计算成本。为了将异常行为隔离到特定的齿轮,轴承,轴或联轴器,系统使用设计信息和这些组件中的退化过程的知识。该系统可以与商用现货(COTS)数据采集和处理系统一起使用,或者可以适用于飞机机载硬件。作者已通过播种的故障和故障进展测试在各种测试台和飞机发动机测试单元上成功测试了该系统,如本文所述。还讨论了算法的验证和确认(V&V)。

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