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Thermomechanical modeling of motorized spindle systems for high-speed milling.

机译:高速铣削电动主轴系统的热机械建模。

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摘要

Motorized high speed spindles with angular contact ball bearings and minimum oil lubrication may suddenly fail due to thermal problems, for which the exact reason is unknown. Currently, internal temperatures, internal heat flow, thermal preload and stiffness changes in this type of spindle cannot be predicted with sufficient accuracy, and there are observations that cannot be fully explained by previous models. It is believed that the understanding of thermal and mechanical interactions between different spindle components in a practical spindle system is the key to improving spindle performance and reliability. This research proposes to develop an integrated thermo-mechanical model to account for all heat sources, heat transfer paths, heat sinks, and relative thermal expansions of the spindle system. The temperature field of the entire spindle is predicted by an axisymmetric finite difference model. The model includes linear heat conduction and nonlinear convection and can efficiently solve for the temperature growth of each element. The model accuracy is then validated by comprehensive experiments through accurate temperature and heat flux measurements. Finally, the predicted temperature field is used to determine the mechanical behavior changes in component fit conditions, stiffness, bearing preload, natural frequency, etc. Quantitative relations for temperatures, internal heat flow, thermal preload and spindle stiffness as functions of spindle speed, set cooling conditions and the rigidity of the preloading mechanism have been established. Sensitivity to changes of speed and cooling conditions was also investigated. These results reveal some new observations of spindle behavior that were not reported before. Temperatures of the spindle shaft at high speed are strongly dependent on convective heat flow to surrounding fluids. Also, it was possible to identify temperature oscillations of the bearings under certain operating conditions. The model can be used for diagnosis or design and aims at helping to reduce premature spindle failure and to avoid changing bearing stiffness during machining.
机译:带有角接触球轴承和最少机油润滑的电动高速主轴可能会由于热问题而突然失效,其确切原因尚不清楚。目前,无法以足够的精度预测此类主轴的内部温度,内部热流,热预紧力和刚度的变化,并且某些模型无法完全解释以前的模型。人们相信,在实际的主轴系统中,对不同主轴部件之间的热和机械相互作用的理解是提高主轴性能和可靠性的关键。这项研究建议开发一个综合的热力学模型,以考虑主轴系统的所有热源,传热路径,散热器和相对热膨胀。整个主轴的温度场由轴对称有限差分模型预测。该模型包括线性热传导和非线性对流,可以有效地求解每个元素的温度增长。然后,通过精确的温度和热通量测量,通过全面的实验验证模型的准确性。最后,预测的温度场用于确定零件装配条件,刚度,轴承预紧力,固有频率等方面的机械性能变化。温度,内部热流,热预紧力和主轴刚度与主轴速度的函数的定量关系,设置为已经确定了冷却条件和预加载机构的刚度。还研究了对速度和冷却条件变化的敏感性。这些结果揭示了以前没有报道过的一些新的主轴行为观察结果。主轴轴的温度在很大程度上取决于对流至周围流体的对流热。同样,有可能在某些操作条件下确定轴承的温度波动。该模型可用于诊断或设计,旨在帮助减少主轴过早故障并避免在加工过程中改变轴承刚度。

著录项

  • 作者

    Bossmanns, Bernd.;

  • 作者单位

    Purdue University.;

  • 授予单位 Purdue University.;
  • 学科 Engineering Industrial.; Engineering Mechanical.
  • 学位 Ph.D.
  • 年度 1997
  • 页码 195 p.
  • 总页数 195
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 一般工业技术;机械、仪表工业;
  • 关键词

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