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首页> 外文期刊>Journal of Sound and Vibration >Crack detection in the rotor ball bearing system using switching control strategy and Short Time Fourier Transform
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Crack detection in the rotor ball bearing system using switching control strategy and Short Time Fourier Transform

机译:转子滚珠轴承系统中的裂纹检测使用切换控制策略和短时间傅里叶变换

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摘要

In case of simple Jeffcott rotors, bearings lie on edges of the rotors, hence bearing nonlinearities are not properly absorbed in the dynamic response. Real rotors containing multiple disks, flexible bearing supports, centrally located ball bearings and couplings are far more complex in terms of their dynamic response than simple Jeffcott rotors. Nonlinear dynamic modelling of the flexible rotor with centrally located ball bearing has been developed and used for simulation purposes. It has been observed that crack detection techniques based on the steady-state vibration response work well for simple Jeffcott rotors only. The presence of ball bearings and other system nonlinearities inhibit the direct application of steady-state dynamic response based crack detection techniques for real rotor-bearing systems condition monitoring. However, transient response based crack detection techniques can be successfully applied to work in the presence of system nonlinearities. Crack propagation is enhanced during high amplitude vibrations, hence, instead of working in the resonance region, working in pre-resonance regions is advantageous due to lower vibration amplitudes. Switching control strategy based on a combination of active vibration control and Short Time Fourier Transform is proposed in present work. The proposed technique basically operates on the signal in pre-resonance regions (with low vibration amplitude) hence avoids chances of the crack propagation. This technique can be used to detect the presence of even small cracks and works well in the presence of bearing nonlinearities and flexible bearing supports that are inherently present in real rotor-bearing systems and qualitatively change dynamics of the overall system. (C) 2018 Elsevier Ltd. All rights reserved.
机译:在简单的Jeffcott转子的情况下,轴承位于转子的边缘上,因此轴承非线性在动态响应中不适当地吸收。含有多个磁盘,柔性轴承支架的真实转子,中心位于滚珠轴承和联轴器的动态响应比简单的Joffcott转子更复杂。柔性转子的非线性动态建模,具有中心位于滚珠轴承的柔性转子,并用于模拟目的。已经观察到,仅基于稳态振动响应的裂缝检测技术仅适用于简单的Jeffcott转子。球轴承和其他系统非线性的存在抑制了基于稳态动态响应的基于稳态动态响应的裂缝检测技术的直接应用了真实的转子系统状态监测。然而,基于瞬态响应的裂缝检测技术可以成功应用于在系统非线性存在下工作。在高振幅振动期间,裂缝传播增强,因此,由于较低的振动幅度,在预谐振区域中工作而不是在共振区域中工作。基于主动振动控制和短时间傅里叶变换的切换控制策略是在目前工作的。所提出的技术基本上在预谐振区域(具有低振动幅度)的信号上操作,因此避免了裂缝传播的机会。该技术可用于检测甚至小裂缝的存在,并且在存在轴承非线性和柔性轴承支撑件的存在中,其固有地存在于实际转子的系统中,以及整体系统的定性变化动态。 (c)2018年elestvier有限公司保留所有权利。

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