Świć Antoni, Gola Arkadiusz, Orynycz Olga, Tucki Karol, Matijošius Jonas
Department of Production Computerisation and Robotisation, Faculty of Mechanical Engineering, Lublin University of Technology, ul. Nadbystrzycka 36, 20-618 Lublin, Poland.
Department of Production Management, Faculty of Engineering Management, Bialystok University of Technology, ul. Wiejska 45A, 15-351 Bialystok, Poland.
Materials (Basel). 2022 Jul 29;15(15):5265. doi: 10.3390/ma15155265.
The article presents original technological methods that allow the improvement of the accuracy of the turning and grinding of elastic-deformable shafts by increasing their stiffness by controlling the state of elastic deformations. In particular, the adaptive control algorithm of the machining process that allows the elimination of the influence of the cutting force vibration and compensates for the bending vibrations is proposed. Moreover, a novel technological system, equipped with the mechanism enabling the regulation of the stiffness and dedicated software, is presented. The conducted experimental studies of the proposed methods show that, in comparison with the passive compliance equalization, the linearization control ensures a two-fold increase in the shape accuracy. Compared to the uncontrolled grinding process of shafts with low stiffness, the programmable compliance control increases the accuracy of the shape by four times. A further increase in the accuracy of the shape while automating the processes of abrasive machining is associated with the proposed adaptive control algorithm. Moreover, the initial experiments with the adaptive devices prove that it is possible to reduce the longitudinal shape inaccuracy even by seven times.
本文介绍了通过控制弹性变形状态来提高弹性可变形轴的刚度,从而改进其车削和磨削精度的原始技术方法。具体而言,提出了一种加工过程的自适应控制算法,该算法能够消除切削力振动的影响并补偿弯曲振动。此外,还介绍了一种新型技术系统,该系统配备了能够调节刚度的机构和专用软件。对所提出方法进行的实验研究表明,与被动柔顺均衡相比,线性化控制可使形状精度提高两倍。与低刚度轴的无控制磨削过程相比,可编程柔顺控制可使形状精度提高四倍。在自动化研磨加工过程中,形状精度的进一步提高与所提出的自适应控制算法相关。此外,对自适应装置的初步实验证明,甚至可以将纵向形状误差降低七倍。