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Dynamic Analysis of Cracked Rotor in Viscous Medium and its Crack Diagnosis Using Intelligent Techniques

机译:粘性介质中裂纹转子的动力学分析及其智能技术的裂纹诊断

摘要

Fatigue cracks have high potential to cause catastrophic failures in the rotor which can lead to catastrophic failure if undetected properly and in time. This fault may interrupt smooth, effective and efficient operation and performance of the machines. Thereby the importance of identification of crack in the rotor is not only for leading safe operation but also to prevent the loss of economy and lives.The condition monitoring of the engineering systems is attracted by the researchers and scientists very much to invent the automated fault diagnosis mechanism using the change in dynamic response before and after damage. When the rotor with transverse crack immersed in the viscous fluid, analysis of cracked rotor is difficult and complex. The analysis of cracked rotor partially submerged in the viscous fluid is widely used in various engineering systems such as long spinning shaft used drilling the seabed for the extracting the oil, high-speed turbine rotors, and analysis of centrifuges in a fluid medium. Therefore, dynamic analysis of cracked rotor partially submerged in the viscous medium have been presented in the current study. The theoretical analysis has been performed to measure the vibration signatures (Natural Frequencies and Amplitude) of multiple cracked mild steel rotor partially submerged in the viscous medium. The presence of the crack in rotor generates an additional flexibility. That is evaluated by strain energy release rate given by linear fracture mechanics. The additional flexibility alters the dynamic characteristics of cracked rotor in a viscous fluid. The local stiffness matrix has been calculated by the inverse of local dimensionless compliance matrix. The finite element analysis has been carried out to measure the vibration characteristics of cracked rotor partially submerged in the viscous medium using commercially available finite element software package ANSYS. It is observed from the current analysis, the various factors such as the viscosity of fluid, depth and position of the cracks affect the performance of the rotor and effectiveness of crack detection techniques. Various Artificial Intelligent (AI) techniques such as fuzzy logic, hybrid BPNN-RBFNN neural network, MANFIS and hybrid fuzzy-rule base controller based multiple faults diagnosis systems are developed using the dynamic response of rotating cracked rotor in a viscous medium to monitor the presence of crack. Experiments have been conducted to authenticate the performance and accuracy of proposed methods. Good agreement is observed between the results.
机译:疲劳裂纹很可能在转子中引起灾难性故障,如果未能及时正确地检测到,则可能导致灾难性故障。此故障可能会中断机器的平稳,有效和高效运行以及性能。因此,识别转子中裂纹的重要性不仅对于确保安全运行至关重要,而且对于防止经济损失和生命损失也非常重要。研究人员和科学家非常重视工程系统的状态监测,以发明自动故障诊断技术。机制利用损伤前后动态响应的变化。当具有横向裂纹的转子浸没在粘性流体中时,裂纹转子的分析既困难又复杂。对部分浸没在粘性流体中的裂化转子的分析广泛用于各种工程系统中,例如用于在海底开采石油的长旋转轴,高速涡轮转子以及流体介质中的离心机分析。因此,目前的研究已经提出了部分浸入粘性介质中的裂纹转子的动力学分析。已经进行了理论分析,以测量部分浸没在粘性介质中的多裂纹软钢转子的振动特征(自然频率和振幅)。转子中裂纹的出现产生了额外的灵活性。这是通过线性断裂力学给出的应变能释放率来评估的。额外的灵活性可改变粘性流体中破裂转子的动态特性。局部刚度矩阵是通过局部无量纲柔度矩阵的逆来计算的。已经使用商业上可用的有限元软件包ANSYS进行了有限元分析以测量部分浸没在粘性介质中的裂化转子的振动特性。从目前的分析可以看出,各种因素,如流体的粘度,裂纹的深度和位置,都会影响转子的性能和裂纹检测技术的有效性。利用旋转裂纹转子在黏性介质中的动态响应,监测模糊逻辑,混合BPNN-RBFNN神经网络,MANFIS和基于混合模糊规则基础控制器的多种故障诊断系统,开发出多种人工智能技术。裂缝。已经进行了实验以验证所提出方法的性能和准确性。结果之间观察到良好的一致性。

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    Yadao Adik Ramdayal;

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  • 年度 2016
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