Guang Zhu
Shandong University
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Featured researches published by Guang Zhu.
Materials and Manufacturing Processes | 2016
Qinhe Zhang; Guang Zhu; Kan Wang; Jian Hua Zhang; Chunjie Dong
Understanding the effect of processing parameters on the tool electrode wear during micro-electrical discharge machining (micro-EDM) is helpful to predict and compensate the electrode wear, so as to improve the machining precision. In this paper, experiments are carried out and the influences of tool electrode diameter on the micro-EDM process are discussed based on the skin effect and area effect. It is demonstrated that the machining speed, tool wear, and taper rate are different with the increase of tool electrode diameter. Due to the skin effect and area effect, larger electrode diameter results in higher material removal rate along with higher tool wear rate. The electrode material removal increment is more than the workpiece material removal increment with the increase of tool electrode diameter, which leads to the increase of relative tool wear ratio. Discharge energy is concentrated on the tool surface which enhances the possibility of discharge on the side face and the corner of the tool electrode during the micro-EDM, especially when drilling with a larger tool electrode. As a result, a tool electrode with larger diameter results in a higher taper rate.
Chinese Journal of Mechanical Engineering | 2016
Qinhe Zhang; Kan Wang; Guang Zhu; Xiuzhuo Fu; Jian Hua Zhang
Electrical discharge machining(EDM) is a promising non-traditional micro machining technology that offers a vast array of applications in the manufacturing industry. However, scale effects occur when machining at the micro-scale, which can make it difficult to predict and optimize the machining performances of micro EDM. A new concept of “scale effects” in micro EDM is proposed, the scale effects can reveal the difference in machining performances between micro EDM and conventional macro EDM. Similarity theory is presented to evaluate the scale effects in micro EDM. Single factor experiments are conducted and the experimental results are analyzed by discussing the similarity difference and similarity precision. The results show that the output results of scale effects in micro EDM do not change linearly with discharge parameters. The values of similarity precision of machining time significantly increase when scaling-down the capacitance or open-circuit voltage. It is indicated that the lower the scale of the discharge parameter, the greater the deviation of non-geometrical similarity degree over geometrical similarity degree, which means that the micro EDM system with lower discharge energy experiences more scale effects. The largest similarity difference is 5.34 while the largest similarity precision can be as high as 114.03. It is suggested that the similarity precision is more effective in reflecting the scale effects and their fluctuation than similarity difference. Consequently, similarity theory is suitable for evaluating the scale effects in micro EDM. This proposed research offers engineering values for optimizing the machining parameters and improving the machining performances of micro EDM.
The International Journal of Advanced Manufacturing Technology | 2017
Kan Wang; Qinhe Zhang; Guang Zhu; Jianhua Zhang
The International Journal of Advanced Manufacturing Technology | 2017
Kan Wang; Qinhe Zhang; Guang Zhu; Yuhua Huang
The International Journal of Advanced Manufacturing Technology | 2017
Guang Zhu; Qinhe Zhang; Haijiao Wang; Kan Wang; Min Zhang
The International Journal of Advanced Manufacturing Technology | 2017
Kan Wang; Qinhe Zhang; Guang Zhu; Yuhua Huang; Jianhua Zhang
The International Journal of Advanced Manufacturing Technology | 2016
Min Zhang; Qinhe Zhang; Liya Dou; Guang Zhu
Procedia CIRP | 2016
Min Zhang; Qinhe Zhang; Guang Zhu; Jianhua Zhang
The International Journal of Advanced Manufacturing Technology | 2018
Guang Zhu; Min Zhang; Qinhe Zhang; ZhenChao Song; Kan Wang
The International Journal of Advanced Manufacturing Technology | 2018
Kan Wang; Qinhe Zhang; Guang Zhu; Jianhua Zhang