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首页> 外文期刊>International journal of machine learning and cybernetics >Fault diagnosis based on relevance vector machine for fuel regulator of aircraft engine
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Fault diagnosis based on relevance vector machine for fuel regulator of aircraft engine

机译:基于相关矢量机的飞机发动机燃油调节器故障诊断

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Fuel regulator is one of the most important components in aircraft engine fuel system and its reliability has great impact on flight safety. Fault diagnosistechniques havebeen proven as a good solution to improving and guaranteeing the reliability of critical unit. In this paper a fault diagnosis approach for fuel regulator of aircraft engine is developed. In the fault diagnosis strategy, a fuel regulator model is used to predict fuel flow according to engine controller command, an engine inverse model is built to precisely estimate the fuel flowing through the regulator, and the deviations among the regulator model output, engine inverse model output and feedback sensor measurement are used to detect and isolate regulator faults. Due to engine structure complexities and strong nonlinearity, it is very difficult to build exact mathematical engine inverse model. To tackle this problem, an emerging machine leaning technique, relevance vector machine, is adopted to construct the relationship between sensor readings and fuel consumption. Moreover, the proposed method is assessed by hardware-in-the-loop simulation test on an experiment platform. The experimental results verify the satisfying estimation accuracy of RVM-based engine inverse model and show that the developed fault diagnosis method for fuel regulator is effective and feasible, which is promising for fuel system reliability enhancement and aero-engine condition based maintenance.
机译:燃油调节器是飞机发动机燃油系统中最重要的组件之一,其可靠性对飞行安全有很大影响。故障诊断技术已被证明是改善和保证关键单元可靠性的良好解决方案。本文提出了一种飞机发动机燃油调节器的故障诊断方法。在故障诊断策略中,使用燃料调节器模型根据发动机控制器命令预测燃料流量,建立发动机逆模型以精确估算流过调节器的燃料,以及调节器模型输出,发动机逆模型之间的偏差输出和反馈传感器测量用于检测和隔离调节器故障。由于发动机结构的复杂性和强烈的非线性,很难建立精确的数学发动机逆模型。为了解决这个问题,采用了一种新兴的机器学习技术,即相关向量机,来构造传感器读数和油耗之间的关系。此外,在实验平台上,通过硬件在环仿真测试对提出的方法进行了评估。实验结果验证了基于RVM的发动机逆模型的令人满意的估计精度,表明所开发的燃油调节器故障诊断方法是有效可行的,对于提高燃油系统的可靠性和基于航空发动机状态的维护很有希望。

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