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Obstruction-Type Chip Breakers for Controllable Chips and Improved Cooling/Lubrication during Drilling - A Feasibility Study

机译:可控芯片的障碍型碎屑断路器及钻井过程中改善的冷却/润滑 - 可行性研究

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During drilling, long stringy chips resulting from ductile plastic deformation of engineering materials cause severe chip clogging within the narrow helical flutes and edge chipping, leading to premature tool wear and breakage, poor tool life, poor hole quality and the productivity. Cutting fluid cannot efficiently access to the cutting edge that plays a vital role for improving machining performance. To address the localized heat and chip control issues during drilling, research was previously performed using conventional flood cooling, modified tool geometry, tool coating materials, and internal coolant via through hole(s). This works focuses on design and insertion of some obstruction-type chip breakers such as ribs and pins on the drill flutes and their influence on chip formation behavior. For feasibility experiments, small round pins made of stainless steel at a diameter of about 0.8-0.85 mm diameter are prepared and attached on the electro-discharge machined (EDM) blind holes on twisted drill flutes. By varying spindle speed and feed rate, drilling experiments are performed on two engineering materials including Al6061 and Inconel 625 superalloys at four cutting conditions. Most chips are found to be broken and some split into two fractions due to the pins. Force and power values with pin-inserted drill bits were found to be reduced from 5-9%. This finding indicates that there is a good potential to implement such obstruction-type chip-breakers on the drill flutes for obtaining controllable chip while also improving coolant flow at the cutting edge through the tiny tool-chip interface.
机译:在钻井期间,由工程材料的韧性塑性变形引起的长弦芯片导致狭窄的螺旋槽和边缘切削内的严重碎片堵塞,导致过早的工具磨损和破损,刀具寿命不足,孔质量差和生产率。切削液不能有效地进入发挥着至关重要作用的切削刃,以改善加工性能。为了在钻井过程中解决局部热量和芯片控制问题,先前使用常规的洪水冷却,改进的工具几何形状,工具涂料和内部冷却剂通过孔进行研究。这项工作侧重于设计和插入一些障碍型碎屑断路器,例如钻槽上的肋骨和销和它们对芯片形成行为的影响。对于可行性实验,制备直径为约0.8-0.85mm直径的不锈钢制成的小圆形销,并安装在扭曲钻槽上的电放电加工(EDM)盲孔上。通过不同的主轴速度和进料速率,在四个切割条件下在包括AL6061和Inconel 625超合金的两个工程材料上进行钻井实验。大多数芯片被发现被打破,并且由于销引起了一些分为两个分数。发现具有引脚插入钻头的力和功率值减少5-9%。该发现表明,在钻槽上实施这种障碍型碎片断路器,用于获得可控芯片的同时还通过微小的工具芯片界面改善切削刃处的冷却剂流动。

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