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Fabrication of high aspect ratio microgroove on Ti6A14V by laser-induced oxidation assisted micro milling

机译:激光诱导氧化辅助微铣削在Ti6A14V上制备高深宽比的微槽

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摘要

High aspect ratio microstructures based on titanium alloys have a become driving demand for various fields such as aerospace, biomedicine, and turbine blades due to their high strength, low density, biocompatibility, and corrosion resistance. However, high aspect ratios in micro-machining domains come up with low material removal rate, poor machined microstructure quality, premature tool failures, and slow machining efficiency. In this paper, a novel hybrid processing method of laser-induced oxidation assisted micro milling (LOMM) is proposed to solve the aforementioned problems. The oxidation behavior of Ti6Al4V under nanosecond laser irradiation, cutting force, machined surface quality, burr formation and tool wear mechanisms were investigated. A microgroove on Ti6Al4V alloy with a width of 0.5 mm and an aspect ratio of 5.4 was fabricated successfully by LOMM. For comparison, the conventional micro milling (CONV) was also carried out to fabricate a high aspect ratio microgroove under the same cutting parameters. Under laser irradiation, a loose oxide layer and relatively dense sub-layer were formed. The thicknesses of the oxide layer and sub-layer were 18.2 mu m and 2.3 mu m, respectively. The cutting force and tool wear rate in LOMM were tremendously low in removing the oxide layer compared to those in CONV. The surface quality machined by LOMM was superior to that produced by CONV. The tool wear mechanisms observed in LOMM was coating spalling, while in CONV tool nose breakage, coating spalling and adhesive wear were observed. Compared to CONV, the tool service life in LOMM was prolonged significantly.
机译:基于钛合金的高纵横比微结构由于其高强度,低密度,生物相容性和耐腐蚀性而成为各种领域的驱动需求,例如航空航天,生物医学和涡轮叶片。然而,在微加工领域中,高的长宽比导致材料去除率低,加工的微结构质量差,工具过早失效以及加工效率低下。为了解决上述问题,本文提出了一种新型的激光诱导氧化辅助微铣削(LOMM)混合加工方法。研究了Ti6Al4V在纳秒激光辐照下的氧化行为,切削力,加工表面质量,毛刺形成和工具磨损机理。通过LOMM成功地在Ti6Al4V合金上形成了宽度为0.5 mm,纵横比为5.4的微沟槽。为了进行比较,还进行了常规的微铣削(CONV),以在相同的切削参数下制造高深宽比的微槽。在激光照射下,形成疏松的氧化物层和相对致密的子层。氧化物层和子层的厚度分别为18.2μm和2.3μm。与CONV相比,LOMM中的切削力和刀具磨损率在去除氧化层方面非常低。 LOMM加工的表面质量优于CONV的表面质量。在LOMM中观察到的刀具磨损机理是涂层剥落,而在CONV刀头断裂中,观察到涂层剥落和粘合剂磨损。与CONV相比,LOMM中的工具使用寿命显着延长。

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