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内螺纹冷挤压工艺的数值模拟与工艺优化

Numerical Simulation and Process Optimization of Internal Thread Cold Extrusion Process.

作者信息

Hou Hong-Ling, Zhang Guang-Peng, Xin Chen, Zhao Yong-Qiang

机构信息

School of Mechanical and Precision Instrumental Engineering, Xi'an University of Technology, Xi'an 710048, China.

School of Mechanical Engineering, Shaanxi University of Technology, Hanzhong 723001, China.

出版信息

Materials (Basel). 2020 Sep 7;13(18):3960. doi: 10.3390/ma13183960.

Abstract

In the internal thread extrusion forming, if the process parameters are not selected properly, the extrusion torque will increase, the extrusion temperature will be too high, or even the tap will break. In order to obtain effective process parameters under certain working conditions, this paper uses a combination of numerical simulation and process experiment to analyze the influence of the bottom hole diameter, extrusion speed, and friction factor on the extrusion torque and extrusion temperature. Through an orthogonal experiment, the significant influence law of different process parameters on the extrusion torque and extrusion temperature was studied, and the order of their influence was determined. Based on the optimal process parameters, numerical simulations and process tests were carried out, and the extrusion effect and related parameters were compared and analyzed. The results show that the extruded thread has clear contour, uniform tooth pitch, complete tooth shape, and good flatness. Compared with before optimization, the maximum extrusion torque has been reduced by 37.15%, the maximum temperature has been reduced by 29.72%, and the extrusion quality has been improved. It shows that the optimized method and optimized process parameters have good engineering practicability.

摘要

在内螺纹挤压成型过程中,如果工艺参数选择不当,挤压扭矩会增大,挤压温度会过高,甚至丝锥会折断。为了在一定工况下获得有效的工艺参数,本文采用数值模拟与工艺试验相结合的方法,分析底孔直径、挤压速度和摩擦系数对挤压扭矩和挤压温度的影响。通过正交试验,研究了不同工艺参数对挤压扭矩和挤压温度的显著影响规律,并确定了其影响顺序。基于优化后的工艺参数,进行了数值模拟和工艺试验,并对挤压效果和相关参数进行了对比分析。结果表明,挤压出的螺纹轮廓清晰、螺距均匀、牙形完整、平整度良好。与优化前相比,最大挤压扭矩降低了37.15%,最高温度降低了29.72%,挤压质量得到了提高。表明优化方法和优化后的工艺参数具有良好的工程实用性。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/cc62/7557822/e01461d7e6b0/materials-13-03960-g001.jpg

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