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Effects of Mechanical Backlash on Linear Electromechanical Actuators: A Fault Identification Method based on the Simulated Annealing Algorithm

机译:机械间隙对线性机电执行器的影响:基于模拟退火算法的故障识别方法

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Several approaches can be employed in prognostics, to detect incipient failures of primary flight command electromechanical actuators (EMA), caused by progressive wear. The development of a prognostic algorithm capable of identifying the precursors of an electromechanical actuator failure is beneficial for the anticipation of the incoming faults: a correct interpretation of the fault degradation pattern can trig an early alert of the maintenance crew, who can properly schedule the servomechanism replacement. The research presented in this paper proposes a fault detection and identification technique, based on approaches derived from optimization methods, able to identify symptoms of EMA degradation before the actual exhibition of the anomalous behavior; in particular, the authors' work analyses the effects due to progressive backlashes acting on the mechanical transmission and evaluates the effectiveness of the proposed approach to correctly identify these faults. An experimental test bench was developed: results show that the method exhibit adequate robustness and a high degree of confidence in the ability to early identify an eventual fault, minimizing the risk of false alarms or unrecognized failures.
机译:通过渐进式磨损引起的初步飞行指挥机电致动器(EMA)的初始失败,可以采用几种方法。能够识别机电执行器故障的前体的预测算法的开发是有利于入境故障的预期:对故障劣化模式的正确解释可以触发维护人员的早期警报,谁可以正确安排伺服机构替代品。本文提出的研究提出了一种故障检测和识别技术,基于源自优化方法的方法,能够在实际展览的异常行为展之前识别EMA降解的症状;特别是,作者的工作分析了由于在机械传输上作用的渐进式速度而产生的效果,并评估所提出的方法正确识别这些故障的有效性。开发了一个实验性测试台:结果表明,该方法表现出足够的鲁棒性和高度置信度,对早期识别最终故障的能力,最大限度地减少虚假警报或未识别失败的风险。

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