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首页> 外文期刊>Advances in Manufacturing >Tool wear mechanisms in axial ultrasonic vibration assisted milling in-situ TiB2/7050Al metal matrix composites
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Tool wear mechanisms in axial ultrasonic vibration assisted milling in-situ TiB2/7050Al metal matrix composites

机译:在轴向超声振动刀具磨损机制辅助铣削原位TiB2/7050Al金属矩阵复合材料

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摘要

The in-situ TiB2 particle reinforced aluminum matrix composites are materials that are difficult to machine, owing to hard ceramic particles in the matrix. In the milling process, the polycrystalline diamond (PCD) tools are used for machining these materials instead of carbide cutting tools, which significantly increase the machining cost. In this study, ultrasonic vibration method was applied for milling in-situ TiB2/7050Al metal matrix composites using a TiAlN coated carbide end milling tool. To completely understand the tool wear mechanism in ultrasonic-vibration assisted milling (UAM), the relative motion of the cutting tool and interaction of workpiece-tool-chip contact interface was analyzed in detail. Additionally, a comparative experimental study with and without ultrasonic vibration was carried out to investigate the influences of ultrasonic vibration and cutting parameters on the cutting force, tool life and tool wear mechanism. The results show that the motion of the cutting tool relative to the chip changes periodically in the helical direction and the separation of tool and chip occurs in the transverse direction in one vibration period, in ultrasonic vibration assisted cutting. Large instantaneous acceleration can be obtained in axial ultrasonic vibration milling. The cutting force in axial direction is significantly reduced by 42%-57%, 40%-57% and 44%-54%, at different cutting speeds, feed rates and cutting depths, respectively, compared with that in conventional milling. Additionally, the tool life is prolonged approximately 2-5 times when the ultrasonic vibration method is applied. The tool wear pattern micro-cracks are only found in UAM. These might be of great importance for future research in order to understand the cutting mechanisms in UAM of in-situ TiB2/7050Al metal matrix composites.
机译:现场TiB2粒子增强铝基复合材料的材料困难的机器,由于陶瓷粒子的矩阵。聚晶金刚石(PCD)使用工具加工这些材料代替硬质合金切割工具,这大大增加了加工成本。申请铣削振动方法原位使用TiAlN TiB2/7050Al金属基复合材料涂层硬质合金端铣刀。理解刀具磨损机制超声振动辅助铣削(UAM)刀具的相对运动交互workpiece-tool-chip接触详细界面进行了分析。比较实验研究有或没有进行了超声振动研究超声波的影响振动和切削参数对切割力、刀具寿命和刀具磨损机制。结果表明,刀具的运动相对于芯片周期性的变化螺旋方向和工具和分离在一个芯片发生在横向方向超声振动的振动周期辅助切割。加速可以获得在轴向超声波振动研磨。方向是大大减少了42% - -57%,40% - -57%和44% - -54%,在不同的切削速度,饲料利率和切削深度,分别相比之下,在逆铣。此外,工具寿命延长当超声波大约2 - 5倍振动方法的应用。模式微裂缝只是UAM中找到。可能为未来的研究具有十分重要的意义为了理解机制UAM原位TiB2/7050Al金属矩阵复合材料。

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