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A modeling approach for analysis and improvement of spindle-drawbar-bearing assembly dynamics

机译:分析和改善主轴-拉杆-轴承组件动力学的建模方法

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摘要

With the increase in the use of high speed machining (HSM), the need to predict spindle-bearing performance at high speeds is strategically critical to the implementation of HSM. In this research, considering the effects of drawbar on the dynamic behavior of the milling motorized spindle-bearing system, a double-rotor model of spindle-drawbar-bearing assembly has been established by utilizing the whole transfer matrix method (WTMM) and a nonlinear rolling bearing dynamic model including the centrifugal force and gyroscopic effects. The critical speeds and the dynamic stiffness of the spindle have been systematically studied. The effects of bearing axial preload, bearing specifications, bearing span and the inner diameter of motor rotor on the dynamic characteristics of the spindle are analyzed, and the spindle is designed by using the optimum selecting method. The results show that the drawbar is a sensitive part to affect the spindle dynamic behavior, and the effect of drawbar on the dynamic characteristics of the spindle system should be considered carefully. The axial preload and inner diameter of motor rotor have a bigger influence on the dynamic characteristics of the spindle than bearing span and rear bearing specification. The proposed model has been verified experimentally by measuring the dynamic stiffness at the spindle nose, and the simulated results are compared well against the experimental measurement. The results indicate that the double-rotor model is suitable for the prediction of dynamics of the spindle-drawbar-bearing assembly.
机译:随着高速加工(HSM)的使用的增加,对高速预测主轴轴承性能的需求对HSM的实施至关重要。在这项研究中,考虑到拉杆对铣削电动主轴-轴承系统的动力学行为的影响,利用整体传递矩阵法(WTMM)和非线性方法建立了主轴-拉杆-轴承组件的双转子模型。滚动轴承动力学模型包括离心力和陀螺效应。系统地研究了主轴的临界速度和动态刚度。分析了轴承轴向预紧力,轴承规格,轴承跨度和电动机转子内径对主轴动态特性的影响,并采用最佳选择方法设计了主轴。结果表明,牵引杆是影响主轴动态行为的敏感部件,应仔细考虑牵引杆对主轴系统动态特性的影响。与轴承跨度和后轴承规格相比,电动机转子的轴向预紧力和内径对主轴动态特性的影响更大。通过测量主轴鼻端的动态刚度,对所提出的模型进行了实验验证,并将仿真结果与实验结果进行了比较。结果表明,双转子模型适用于主轴-牵引杆-轴承组件的动力学预测。

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