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Study of electrochemical discharge machining technology for slicing non-conductive brittle materials

机译:非导电脆性材料切片的电化学放电加工技术研究

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The electrochemical discharge machining (ECDM) has been proved to be a potential process for the machining of high-strength non-conductive materials. Traveling wire electrochemical discharge machining (TW-ECDM), a newly developed technology, is used to slice the small size (10-30 mm diameter) optical glass and quartz bars. The electrical-thermal etching effect and its feasibility are investigated. The energy release intensities and their physical phenomena under different sizes of discharge wires, power source modulations and methods of electrolyte supply are discussed. The pulsed dc power proves better spark stability and more spark energy release proportion than constant dc power. The input power is modulated to obtain the appropriate frequencies and duty factors for machining glass and quartz materials. The ion translation rate, the electrolyte immersing depth and the concentration of the alkali are found to be the dominant factors of bubbles reaction. Based on the SEM photographs of the workpiece surface, it is noted that the more purple the sparks from the mixed gases of hydrogen and vapor, the better the etching effect is. The V-shape defect occurring at the cut-in and cut-out can be significantly reduced by rotating the workpiece. Finally the appropriate cutting conditions for the quartz and borosilicate optical glass materials are concluded.
机译:电化学放电加工(ECDM)已被证明是加工高强度非导电材料的潜在工艺。行进线电化学放电加工(TW-ECDM)是一项新开发的技术,用于切片小尺寸(直径10-30 mm)的光学玻璃和石英棒。研究了电热刻蚀的效果及其可行性。讨论了在不同尺寸的放电丝,电源调制和电解质供应方法下的能量释放强度及其物理现象。与恒定直流电源相比,脉冲直流电源具有更好的火花稳定性和更多的火花能量释放比例。调制输入功率以获得用于加工玻璃和石英材料的适当频率和占空比。发现离子转化速率,电解质浸没深度和碱浓度是气泡反应的主要因素。根据工件表面的SEM照片,可以注意到,氢气和蒸汽的混合气体产生的火花越紫色,蚀刻效果越好。通过旋转工件,可以大大减少切入和切出处出现的V形缺陷。最后,得出了适合石英和硼硅酸盐光学玻璃材料的切割条件。

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