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Motion Error Analysis and Modeling Technology of CNC Camshaft Grinder

机译:数控凸轮轴磨床运动误差分析与建模技术

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Taking certain CNC camshaft grinder as the subject its motion error analysis and modeling were studied. The movement forms and types of errors between the moving parts were analysed, the movement between coordinate systems of the adjacent bodies was used to express the movement between the two adjacent bodies, and the ideal motion equation and actual motion equation in case of errors between the adjacent bodies were set up. Actual motion equation between adjacent bodies was made and further extended to analyse arbitrary low-order body arrays, which provides a theoretical basis for studying the multi-branch CNC camshaft grinding machine error modeling. Complex multi-branch chain CNC camshaft grinder simplified was made as a simple multibody system, and corresponding body coordinate systems and motion reference coordinate systems for moving parts were established to calculate the corresponding transformation matrix between adjacent bodies. Moving parts of the machine were divided into “workpieces-bed” and “wheel-bed” two kinematic chains. The precision constraint equation of the machine is Pt = Pw in case of using errors influence, and the constraint equation was solved. It provides necessary conditions for study of CNC camshaft grinder error compensation. Results show that the machine precision is significantly improved after error compensation.
机译:以某数控凸轮轴磨床为研究对象,对其运动误差进行了分析和建模。分析了运动部件之间的运动形式和误差类型,利用相邻物体坐标系之间的运动来表示两个相邻物体之间的运动,并给出了理想运动方程式和实际运动方程式之间的误差。设立了相邻的机构。建立了相邻物体之间的实际运动方程,并进一步扩展以分析任意低阶物体阵列,为研究多分支数控凸轮轴磨床误差建模提供了理论基础。将复杂的多分支链数控凸轮轴磨床简化为一个简单的多体系统,并建立了相应的运动部件的体坐标系和运动参考坐标系,以计算相邻的体之间的对应变换矩阵。机器的运动部件分为“工件床”和“轮床”两个运动链。在使用误差影响的情况下,机器的精度约束方程为Pt = Pw,并求解了约束方程。为研究数控凸轮轴磨床的误差补偿提供了必要的条件。结果表明,经过误差补偿后,机床精度得到了明显提高。

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