Investigation on the influence of the equivalent bending stiffness of the thin-walled parts on the machining deformation

被引:2
作者
Bianhong Li
Hanjun Gao
Hongbin Deng
Hai Pan
Baoguo Wang
机构
[1] Beijing Institute of Technology,School of Mechatronical Engineering
[2] University College London,Institute of Orthopaedics and Musculoskeletal Science, Division of Surgery and Interventional Science, The Royal National Orthopaedic Hospital
[3] Beihang University,State Key Laboratory of Virtual Reality Technology and Systems, School of Mechanical Engineering and Automation
[4] China Weaponry Huaihai Industrial Group,undefined
来源
The International Journal of Advanced Manufacturing Technology | 2019年 / 101卷
关键词
Machining deformation; Equivalent bending stiffness; Residual stress; Semi-analytical prediction model; FEM;
D O I
暂无
中图分类号
学科分类号
摘要
A semi-analytical model considering the biaxial blank residual stress is proposed to predict the machining deformation of the thin-walled parts. Machining deformations of five thin-walled parts with different stiffening rib layouts are calculated using the proposed model, and the accuracy of the model is validated by FEM simulations and machining experiments. In comparison with the experimental results, the relative errors of the final vertex deformations calculated by the proposed model for specimens 1–5 are 3.08%, 5.66%, 9.15%, 3.60%, and 8.43%, respectively. Then, the influence of the equivalent bending stiffness on the machining deformation is investigated. Results show that, compared with specimen 1, the equivalent bending stiffness in the X direction of specimens 2–5 are increased by 35.48%, 94.02%, 96.29%, and 100.15%, respectively; meanwhile, the maximum deformations are decreased by 23.42%, 30.92%, 30.66%, and 17.72%, respectively. The machining deformation decreases with the increase of equivalent bending stiffness in the length direction, and the equivalent stiffness in the width direction has no significant influence on the overall machining deformation. Stiffening ribs can be added to increase the bending stiffness and decrease the deformation in machining process. The deformation can be further reduced when the stiffening ribs are placed closer to the maximum deformation point.
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页码:1171 / 1182
页数:11
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