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弯刃刀具深型腔车削颤振稳定性预测

Chatter Stability Prediction for Deep-Cavity Turning of a Bent-Blade Cutter.

作者信息

Wang Xiaojuan, Song Qinghua, Liu Zhanqiang

机构信息

Key Laboratory of High Efficiency and Clean Mechanical Manufacture, Ministry of Education, School of Mechanical Engineering, Shandong University, Jinan 250061, China.

National Demonstration Center for Experimental Mechanical Engineering Education, Shandong University, Jinan 250061, China.

出版信息

Sensors (Basel). 2024 Jan 18;24(2):606. doi: 10.3390/s24020606.

Abstract

The bent-blade cutter is widely used in machining typical deep-cavity parts such as turbine discs and disc shafts, but few scholars have studied the dynamics of the turning process. The existing mechanism of regenerative chatter in the metal-cutting process does not consider the influence of bending and torsional vibration, the change of tool profile and the complex machining geometry, so it cannot be directly used to reveal the underlying cause of the chatter phenomena in the deep inner cavity part turning process. This paper attempts to investigate the dynamic problem of the bent-blade cutter turning process. The dynamic model of a bent-blade cutter is proposed by considering the regenerative chatter effect. Based on the extended Timoshenko beam element (E-TBM) theory and finite element method (FEM), the coupling between the bending vibrations and the torsional vibrations, as well as the dynamic cutting forces, are modeled along the turning path. The vibration characteristics of the bending-torsion combination of cutter board and cutter bar, together with the dynamical governing equation, were analyzed theoretically. The chatter stability of a bent-blade cutter with a bending and torsion combination effect is predicted in the turning process. A series of turning experiments are carried out to verify the accuracy and efficiency of the presented model. Furthermore, the influence of cutting parameters on the cutting process is analyzed, and the results can be used to optimize the cutting parameters for suppressing machining vibration and improving machining process stability.

摘要

弯刀片刀具广泛应用于加工涡轮盘和盘轴等典型深腔零件,但很少有学者研究其车削过程的动力学。金属切削过程中现有的再生颤振机理没有考虑弯曲和扭转振动的影响、刀具轮廓的变化以及复杂的加工几何形状,因此不能直接用于揭示深内腔零件车削过程中颤振现象的潜在原因。本文试图研究弯刀片刀具车削过程的动力学问题。通过考虑再生颤振效应,建立了弯刀片刀具的动力学模型。基于扩展的铁木辛柯梁单元(E-TBM)理论和有限元方法(FEM),沿车削路径对弯曲振动与扭转振动以及动态切削力之间的耦合进行了建模。从理论上分析了刀盘和刀杆弯扭组合的振动特性以及动力学控制方程。预测了具有弯扭组合效应的弯刀片刀具在车削过程中的颤振稳定性。进行了一系列车削实验,以验证所提出模型的准确性和有效性。此外,分析了切削参数对切削过程的影响,其结果可用于优化切削参数,以抑制加工振动并提高加工过程稳定性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/a0b9/10820624/e2ff1320a2fb/sensors-24-00606-g008.jpg

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