Niu Shen, Huang Kaiqiang, Ming Pingmei, Qin Ge, Peng Yansen
School of Mechanical and Power Engineering, Henan Polytechnic University, Jiaozuo 454003, China.
Zhengzhou Institute for Advanced Research, Henan Polytechnic University, Zhengzhou 450018, China.
Micromachines (Basel). 2024 Nov 23;15(12):1410. doi: 10.3390/mi15121410.
Difficult-to-cut titanium matrix composites (TMCs) are widely used in the aerospace, automotive, and defense sectors due to their excellent physical properties. Electrochemical mill grinding (ECMG) can achieve the processing effects of electrochemical milling and electrochemical grinding using the same tool, which has the potential to complete the rough and finish machining of TMCs in succession. However, in the rough machining stage, the bottom of the slot becomes concave due to the inevitable stray corrosion, leading to poor flatness, which increases the machining allowance for subsequent finish machining. In this paper, a bottom outlet hole layout of an abrasive tool with a diameter of 6 mm is proposed. Dynamic simulations demonstrate that the electrolyte flow rate in both side regions of the slot is significantly increased by the bottom outlet holes. The experimental results confirm that, compared with the tool without bottom outlet holes, a 61.2% reduction in the bottom flatness can be achieved when using the newly proposed tool during rough machining. After the finish machining, a slot with a width of 8 mm and a depth of 4.8 mm was obtained on the TMCs, which had a flat bottom and sidewall surface with good surface quality.
难切削钛基复合材料(TMCs)因其优异的物理性能而广泛应用于航空航天、汽车和国防领域。电化学铣磨(ECMG)可以使用同一工具实现电化学铣削和电化学磨削的加工效果,有潜力连续完成TMCs的粗加工和精加工。然而,在粗加工阶段,由于不可避免的杂散腐蚀,槽底部会变成凹形,导致平面度较差,这增加了后续精加工的加工余量。本文提出了一种直径为6mm的磨具底部出孔布局。动态模拟表明,槽两侧区域的电解液流速因底部出孔而显著增加。实验结果证实,与无底部出孔的工具相比,在粗加工中使用新提出的工具时,底部平面度可降低61.2%。精加工后,在TMCs上获得了一个宽度为8mm、深度为4.8mm的槽,其底部和侧壁表面平整,表面质量良好。