Lai Zhouyi, Zhao Zhenyu, Guo Ting, Luo Yuyin, Zhou Houming, Li Changan
School of Sino-German Robotics, Shenzhen Institute of Information Technology, Shenzhen 518172, China.
Shenzhen Chuangshi Machinery Co., Ltd., Shenzhen 518029, China.
Micromachines (Basel). 2022 Aug 5;13(8):1263. doi: 10.3390/mi13081263.
In order to explore the clamping fatigue properties of shrink-fit holders, ANSYS software was used in this study to analyze the thermal and contact stresses during the clamping process of the shrink-fit holder, and the fatigue analysis was performed by selecting the dangerous areas based on the two stresses. A numerical control shrink-fit holder clamping fatigue test device was manufactured, and the automatic clamping of the shrink-fit holder was executed in this study. After 500 clamping repetitions, a milling test was carried out on the shrink-fit bracket. By collecting the vibration signal of the workpiece during processing and measuring the change in the surface roughness of the workpiece, and then analyzing the change in the machining performance of the shrink-fit holder under different clamping times, we were able to compare and verify the accuracy of the finite element fatigue analysis.
为了探究热装夹刀柄的夹紧疲劳特性,本研究使用ANSYS软件分析热装夹刀柄夹紧过程中的热应力和接触应力,并基于这两种应力选择危险区域进行疲劳分析。制造了数控热装夹刀柄夹紧疲劳试验装置,并在本研究中实现了热装夹刀柄的自动夹紧。在进行500次夹紧重复试验后,对热装夹刀柄进行了铣削试验。通过采集加工过程中工件的振动信号并测量工件表面粗糙度的变化,进而分析不同夹紧次数下热装夹刀柄加工性能的变化,从而能够比较和验证有限元疲劳分析的准确性。