Design of thermal error control system for high-speed motorized spindle based on thermal contraction of CFRP
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Design of thermal error control system for high-speed motorized spindle based on thermal contraction of CFRP

机译:基于CFRP热收缩的高速电动主轴热误差控制系统设计

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AbstractAmong the thermal error sources of the high accuracy and efficiency machine tools, the thermal errors induced by the heat generated from running high speed motorized spindle is the crucial one. A new thermal error control method for motorized spindle is suggested, which is based on the thermal deformation balance principle. The essential idea of the method is to utilize the thermal contraction of Carbon Fiber Reinforced Plastic (CFRP) to restrain the thermal elongation of metal spindle housing. In the designed control system, the CFRP bars are uniformly distributed around the spindle housing, and the ThermoElectric Modules (TEMs) works as the heat pump which transfers the heat from spindle housing to CFRP bar. The experimental and numerical simulation results show that the suggested approach reduces 97% thermal displacement compared with the motorized spindle without the suggested thermal error control system. It is expected that the suggested method can also be applied to thermal error control for various cylindrical high-precision parts including aerospace equipment, optics and optical instruments.Graphical abstractDisplay OmittedHighlights?The thermal error control system (TECS) for motorized spindle is designed.?The thermal contraction of CFRP restrains the thermal elongation of metal.?The TECS is based on the thermal deformation balance principle.?The effectiveness of TECS is validated by the experimental and FEM results.]]>
机译:<![CDATA [ 抽象 在高精度和效率机床的热误差源中,由热量产生的热误差引起的热误差运行高速电动主轴是关键的。建议采用新的热误差控制方法,这是基于热变形平衡原理。该方法的基本思想是利用碳纤维增强塑料(CFRP)的热收缩来抑制金属主轴壳体的热伸长率。在设计的控制系统中,CFRP杆围绕主轴壳体均匀地分布,热电模块(TEM)用作从主轴壳体到CFRP棒的热泵。实验性和数值模拟结果表明,与电动主轴相比,建议的方法与没有建议的热误差控制系统相比,与电动主轴相比减少了97%的热位移。预计建议的方法也可以应用于各种圆柱形高精度部件的热误差控制,包括航空航天设备,光学和光学仪器。 图形抽象 显示省略 突出显示 设计电动主轴的热误差控制系统(TECS)。 CFRP的热收缩限制了金属的热伸长率。 < CE:列表项ID =“U0020”> TECS基于热变形余额原理。< / ce:para> 通过实验和有限元成果验证TECS的有效性。 ]]>

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