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Development of whole-machine high speed balance approach for turbomachinery shaft system with N+1 supports

机译:N + 1支撑型涡轮机械轴系统的全机高速平衡方法的开发

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It is very challenging to conduct dynamic balance for turbomachinery shaft system with N+1 supports due to complex bending deformation, less measurement information, and unavoidable testing condition constrains. However, dynamic balance is needed to reduce the number of rotor startups and ensure the operation safety. The influence coefficient balance method has been used for the shaft system by moving required balancing rotor disks. In this paper, a whole-machine dynamic balance method is proposed. The proposed approach is developed based on the multi-plane influence coefficients balance method without applying trial masses. It only needs the initial responses of synchronous vibration and a finite element model (FEM). The multi-plane influence coefficients under different speeds are calculated based on the steady state response predictions from the FEM instead of using measured responses as used in other traditional balance approaches. Thus, the correction masses along the shaft are determined numerically to balance the shaft system with high efficiency. The proposed dynamic balance method was validated experimentally using a shaft system with four rotors and five bearings which rotating up to 2700 rpm. The dynamic balance was clearly demonstrated. Average reduction of bearing vibration amplitude is 25%. Maximum 53% reduction is observed under 2700 rpm which is above the fourth critical speed of the shaft system.
机译:由于复杂的弯曲变形,测量信息较少和不可避免的测试条件约束,对具有N + 1支撑的涡轮机械轴系统进行动态平衡是非常具有挑战性的。但是,需要动态余额来减少转子启动的数量并确保操作安全。影响系数平衡方法已通过移动所需的平衡转子盘来用于轴系统。本文提出了一种全机动态平衡方法。所提出的方法是基于多平面影响系数平衡方法而开发的,而不应用试验群众。它只需要同步振动和有限元模型(FEM)的初始响应。基于来自FEM的稳态响应预测来计算不同速度下的多平面影响系数,而不是使用其他传统平衡方法中使用的测量响应。因此,沿着轴的校正质量在数字上确定以高效地平衡轴系统。使用具有四个转子的轴系统和五个轴承旋转高达2700rpm的轴系统进行实验验证了所提出的动态平衡方法。动态平衡明确展示。轴承振动幅度的平均降低为25%。在2700 rpm下观察到最大53%的减少,高于轴系统的第四临界速度。

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