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Adaptive Spindle Damping System with Active Electromagnetic Bearing

机译:具有主动电磁轴承的自适应主轴阻尼系统

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Advanced machining operation require ultra-high-precision motor spindles, tool chucks and cutting tools, free from tool deflection and vibrations. Available motor spindles and tool chucks generate uncontrolled process deviations at several eigenfrequencies, leading to geometrical and surface distortions. This paper presents a patented design method of a non-typical Adaptive Spindle System with an additional electromagnetic bearing based on mechatronics and adaptive control methods for advanced cutting technologies. In comparison to known active magnetic bearing systems for rotor orientation, a rotor damping is investigated between roller bearings. The static and dynamic performance determination of the AIS motor spindle have been carried out at a speed of up to 15,000 rpm on a test bench with actuator stimulated forces and displacement sensors. The analysis of time-domain and amplitude-frequency characteristics confirmed the demand in adaptive closed-loop control methods compensating tool deflections and vibrations at eigenfrequencies.
机译:先进的加工操作需要超高精度的电机主轴,工具卡盘和切割工具,没有刀具偏转和振动。可用的电机主轴和工具卡盘在几件特征频率下产生不受控制的过程偏差,导致几何和表面畸变。本文介绍了一种基于机电一体化的电磁轴承额外的电磁轴承的非典型自适应主轴系统的专利设计方法,以及用于先进切割技术的自适应控制方法。与用于转子取向的已知的主动磁轴承系统相比,在滚子轴承之间研究了转子阻尼。通过致动器刺激力和位移传感器的试验台,在测试台上的速度以高达15,000rpm的速度进行了静态和动态性能确定。时域和幅度频率特性的分析证实了对自适应闭环控制方法的需求补偿了特征频率的刀具偏转和振动。

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