首页> 外文期刊>Proceedings of the Institution of Mechanical Engineers, Part C. Journal of mechanical engineering science >Thermal error controlling for the spindle in a precision boring machine with external cooling across coated joints
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Thermal error controlling for the spindle in a precision boring machine with external cooling across coated joints

机译:在涂层接头外部冷却的精密镗床中控制主轴的热误差

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摘要

Spindles in precision boring machines usually operate without internal cooling, and thermal error in such spindles is nonnegligible and can severely affect the end-processing quality of the machines. This study aims to investigate the effects that external cooling exerts on the thermal behavior of such spindles. A helical tube cooler is taken for external cooling. An analytical thermal resistance model for the grease-coated cooler-housing joint surface, which considers the pressured cambered-flat contact pair and rough metal surface-grease contact, is presented and validated, and a numerical thermal-fluid-solid coupling model for the cooler-spindle system is then established. An evaluation method is put forward to obtain the stability of the thermal error, which determines the boring processing accuracy and thermal equilibrium time, from experimental data. Then, the external cooling was optimally designed based on the simulation results from the numerical model. Experiments show that the designed cooler reduced the thermal equilibrium time by 47.13% and the maximum thermal error by 81.7%, and the proposed model can accurately predict the cooling effect on the spindle thermal behavior. This study not only provides a thermal error control method for the spindle but is expected to advance the theoretical basis of cooling design for complex electromechanical systems.
机译:精密镗床中的主轴通常在没有内部冷却的情况下运行,并且这种主轴的热误差是不可止的,并且可以严重影响机器的最终处理质量。本研究旨在研究外部冷却对这种主轴的热行为产生的影响。螺旋管冷却器用于外部冷却。提出和验证了涂覆倒塌的冷却器壳体接头表面的分析热电阻模型,其考虑加压的弧形扁平接触对和粗金属表面 - 润滑脂接触,以及用于的数值热流体 - 固体耦合模型然后建立冷却器 - 主轴系统。提出评估方法以获得热误差的稳定性,从实验数据确定镗孔处理精度和热平衡时间。然后,基于数值模型的仿真结果,对外部冷却进行了最佳设计。实验表明,设计的冷却器将热平衡时间减少了47.13%,最大热误差减少了81.7%,所提出的模型可以准确地预测对主轴热行为的冷却效果。这项研究不仅为主轴提供了热误差控制方法,但预计将推进复杂机电系统的冷却设计的理论基础。

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