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Modeling and estimation of thermally induced bearing loads in machine tool spindles.

机译:机床主轴中热轴承载荷的建模和估算。

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摘要

Machine tool spindle bearings are subjected to a large range of axial and radial loads due to the machining process. Further the rotating spindle must be extremely stiff to minimize the cutting tool's deflection. The high spindle stiffness is achieved by applying a mechanical load to the bearings, the preload. In fixed preload spindles the bearing loads tend to increase with increasing spindle speed due to thermal expansion and it is well established that these thermally induced loads can lead to premature bearing failure. The traditional approach to avoiding excessive thermally induced bearing loads is to limit the spindle speed. This is incompatible with the need to increase machining productivity by using higher spindle speeds. This trade-off between maintaining low bearing loads, and high spindle stiffness requires machine tool spindle design tools that are capable of analyzing the interaction between the thermally induced bearing loads and the parameters that impact these loads.; A three state model of thermally induced bearing loads is presented which is representative of the models used in recent thermally induced bearing load studies. This model is used in a thermally induced roller bearing load estimation system design study in which different parameter variation compensation methods are used. These bearing load estimation methods and the model that they are based upon do not consider the axial thermal gradients and expansions that are important in the calculation of angular contact bearing loads.; Three models of thermally induced bearing load in angular contact bearing spindles are developed that include the calculation of the radial and axial thermal expansions and the bearing and shaft dynamics. A two dimensional lumped mass, a finite element and a reduced order finite element model of the heat transfer and thermal expansion within the spindle's housing and shaft are developed. In the reduced order model, nodal reduction is used to minimize the number of temperature states which dramatically reduces the computational load.; Simulations are used to demonstrate the relative magnitude of the radial and axial thermal expansions and to demonstrate the increased accuracy of the finite element model. The reduced order model is validated using measured temperature and bearing load data. The thesis ends with a discussion of the future development of an angular contact bearing load estimation system. The contributions of this thesis include the development of a finite element thermally induced angular contact bearing load model that is both accurate and computationally efficient.
机译:由于加工过程,机床主轴轴承承受很大范围的轴向和径向载荷。此外,旋转主轴必须非常坚硬,以最大程度地减少切割工具的偏转。高主轴刚度是通过对轴承施加机械载荷即预载荷来实现的。在固定的预紧主轴中,由于热膨胀,轴承负载往往随主轴转速的增加而增加,并且众所周知,这些热感应负载会导致轴承过早失效。避免过多的热轴承载荷的传统方法是限制主轴转速。这与通过使用更高的主轴速度来提高加工生产率的需求不相容。在保持低轴承负载和高主轴刚度之间的这种折衷要求机床主轴设计工具能够分析热感应轴承负载与影响这些负载的参数之间的相互作用。提出了一种热致轴承载荷的三态模型,该模型代表了最近的热致轴承载荷研究中使用的模型。该模型用于热诱导滚子轴承负荷估算系统设计研究中,其中使用了不同的参数变化补偿方法。这些轴承载荷估算方法和所基于的模型没有考虑轴向热梯度和膨胀,而轴向热梯度和膨胀对角接触轴承载荷的计算很重要。开发了三种角接触轴承主轴中的热轴承载荷模型,包括径向和轴向热膨胀的计算以及轴承和轴的动力学。建立了二维集总质量,主轴箱和轴内传热和热膨胀的有限元模型和降阶有限元模型。在降阶模型中,节点减少用于最小化温度状态的数量,从而大大减少了计算量。仿真用于证明径向和轴向热膨胀的相对大小,并证明有限元模型的精度提高。使用测得的温度和轴承载荷数据验证了降阶模型。本文最后讨论了角接触轴承载荷估算系统的未来发展。本文的贡献包括开发了既精确又计算效率高的有限元热诱导角接触轴承载荷模型。

著录项

  • 作者

    Gibson, Alex O.;

  • 作者单位

    University of Michigan.;

  • 授予单位 University of Michigan.;
  • 学科 Engineering Mechanical.; Applied Mechanics.
  • 学位 Ph.D.
  • 年度 1999
  • 页码 152 p.
  • 总页数 152
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 机械、仪表工业;应用力学;
  • 关键词

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