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Suppression of diamond tool wear in machining of tungsten carbide by combining ultrasonic vibration and electrochemical processing

机译:超声波振动和电化学加工抑制碳化钨加工的金刚石工具磨损

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摘要

As an important ceramic material, tungsten carbide (WC) is utilized as the typical mold in precision glass molding, which has replaced conventional grinding and polishing to provide a highly replicative process for mass manufacturing of optical glass components. Ultra-precision grinding, which is time consuming and has low reproducibility, is the only method to machine such WC molds to high profile accuracy. Although diamond turning is the most widely used machining method for fabrication of optical molds made of metals, diamond turning of WC is still considered challenging due to fast abrasive wear of the diamond tool caused by high brittleness and hardness of WC. Ultrasonic vibration cutting has been proven to be helpful in realizing ductile-mode machining of brittle materials, but its tool life is still not long enough to be utilized in practical diamond turning of optical WC molds. In the current study, a hybrid method is proposed to combine electrochemical processing of WC workpiece surface into the diamond turning process. Cutting tests on WC using poly-crystalline diamond tools were conducted to evaluate its effect on improvement of tool wear and surface quality. Validation cutting tests using single crystal diamond tools has proven that the proposed hybrid method is able to significantly reduce the diamond tool wear and improve the surface quality of machined ultra-fine grain WC workpiece compared to ultrasonic vibration cutting without electrochemical processing.
机译:作为一种重要的陶瓷材料,碳化钨(WC)用作精密玻璃模塑中的典型模具,其更换了传统的研磨和抛光,以提供一种高度复制的光学玻璃组分的大规模制造方法。超精密研磨,即耗时并具有较低的再现性,是将这些WC模具的唯一方法以高轮廓精度加工。尽管金刚石转动是用于制造由金属制成的光学模具的最广泛使用的加工方法,但WC的金刚石转动仍被认为是由于由WC的高脆性和硬度引起的金刚石工具的快速磨损而被挑战。超声波振动切割已被证明在实现脆性材料的韧性模式加工方面有助于,但其刀具寿命仍然不足以用于光学WC模具的实用金刚石转动。在目前的研究中,提出了一种混合方法,将WC工件表面的电化学加工结合到金刚石转动过程中。进行了使用聚结晶金刚石工具对WC的切割测试,以评估其改善工具磨损和表面质量的影响。使用单晶金刚石工具的验证切割测试已经证明,所提出的混合方法能够显着降低金刚石工具磨损,并改善加工的超细晶粒WC工件的表面质量,而超声波振动切割而无需电化学加工。

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