Świć Antoni, Gola Arkadiusz
Department of Production Computerisation and Robotisation, Faculty of Mechanical Engineering, University of Technology, ul. Nadbystrzycka 36, 20-618 Lublin, Poland.
Materials (Basel). 2023 Feb 10;16(4):1498. doi: 10.3390/ma16041498.
This paper reports the results of research on the influence of the compliance of the technological system used in grinding low-stiffness shafts on the shape accuracy of the workpieces. The level of accuracy achieved using passive compliance compensation was assessed, and technological assumptions were formulated to further increase the shape accuracy of the low-stiffness shafts obtained in the grinding process. Taking into account the limitations of passive compliance compensation, a method for the active compensation of the compliance of the elastic technological system during the machining process was developed. The experiments showed that the accuracy of grinding was most effectively increased by adjusting the compliance and controlling the bending moments, depending on the position of the cutting force (grinding wheel) along the part. The experimental results were largely consistent with the results of the theoretical study and confirmed the assumptions made. Adjusting the compliance in the proposed way allows for the significant improvement in the accuracy and productivity of machining of low-stiffness shafts.
本文报道了关于磨削低刚度轴时所用工艺系统的柔顺性对工件形状精度影响的研究结果。评估了采用被动柔顺性补偿所达到的精度水平,并制定了工艺假设,以进一步提高磨削过程中获得的低刚度轴的形状精度。考虑到被动柔顺性补偿的局限性,开发了一种在加工过程中对弹性工艺系统的柔顺性进行主动补偿的方法。实验表明,根据切削力(砂轮)沿零件的位置调整柔顺性并控制弯矩,能最有效地提高磨削精度。实验结果与理论研究结果基本一致,证实了所作的假设。以所提出的方式调整柔顺性可显著提高低刚度轴加工的精度和生产率。