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Introducing passive acoustic filter in acoustic based condition monitoring: Motor bike piston-bore fault identification

机译:在基于声学的状态监测中引入无源声学滤波器:摩托车活塞孔故障识别

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Requirement of designing a sophisticated digital band-pass filter in acoustic based condition monitoring has been eliminated by introducing a passive acoustic filter in the present work. So far, no one has attempted to explore the possibility of implementing passive acoustic filters in acoustic based condition monitoring as a pre-conditioner. In order to enhance the acoustic based condition monitoring, a passive acoustic band-pass filter has been designed and deployed. Towards achieving an efficient band-pass acoustic filter, a generalized design methodology has been proposed to design and optimize the desired acoustic filter using multiple filter components in series. An appropriate objective function has been identified for genetic algorithm (GA) based optimization technique with multiple design constraints. In addition, the sturdiness of the proposed method has been demonstrated in designing a band-pass filter by using an n-branch Quincke tube, a high pass filter and multiple Helmholtz resonators. The performance of the designed acoustic band-pass filter has been shown by investigating the piston-bore defect of a motor-bike using engine noise signature. On the introducing a passive acoustic filter in acoustic based condition monitoring reveals the enhancement in machine learning based fault identification practice significantly. This is also a first attempt of its own kind.
机译:通过在当前工作中引入无源声滤波器,消除了在基于声的状态监测中设计复杂的数字带通滤波器的要求。迄今为止,还没有人试图探索在基于声学的状态监测中将无源声学滤波器用作前置条件的可能性。为了增强基于声学的状态监测,已经设计和部署了无源声学带通滤波器。为了实现有效的带通声滤波器,已经提出了一种通用的设计方法,以使用多个串联的滤波器部件来设计和优化所需的声滤波器。对于具有多个设计约束的基于遗传算法(GA)的优化技术,已经确定了适当的目标函数。此外,通过使用n分支Quincke管,高通滤波器和多个Helmholtz谐振器设计带通滤波器,已证明了所提出方法的坚固性。通过使用发动机噪音信号调查摩托车的活塞孔缺陷,可以展示设计的声带通滤波器的性能。在基于声学的状态监测中引入无源声学滤波器后,就显着增强了基于机器学习的故障识别实践。这也是同类尝试。

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