Experimental investigation of laser metal deposited icosahedral Al-Cu-Fe coatings on grade five titanium alloy

R. Gharehbaghi, E. Akinlabi, O. Fatoba
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引用次数: 22

Abstract

Laser Additive Manufacturing is relatively new in the manufacturing industry. This paper focuses on the effect of hybrid coatings of Al-Cu-Fe on a grade five titanium alloy (Ti6Al4V) using laser metal deposition (LMD) process at different laser power and scanning speeds. Icosahedral Al-Cu-Fe as quasicrystals are a relatively new class of materials which exhibit unusual atomic structure and useful physical and chemical properties. Ti6Al4V/Al-Cu-Fe composite were analysed using Optical microscopy, Scanning electron microscopy (SEM) with energy dispersive microscopy (EDS), indentation testing, X-Ray Diffraction (XRD), corrosion and wear testing. deposit width and height, heat affected zone (HAZ) height), dilution rate, aspect ratio and powder efficiency of each sample remarkably increased with increasing laser power due to the laser-material interaction. It was observed that there are higher number of aluminium and titanium presented in the formation of the composite. The indentation testing reveals that for both scanning speed of 0.8m/min and 1m/min, the mean hardness value decreases with increasing laser power. It was found that due to dilution effect, a part of Ti entered into molten pool from the substrate. The results indicate that Ti, Al3Ti, Ti3Al, CuTi2 can be produced through the in situ metallurgical reactions during the LMD process.
激光金属沉积五级钛合金二十面体Al-Cu-Fe涂层的实验研究
激光增材制造在制造业中相对较新。采用激光金属沉积(LMD)工艺,研究了不同激光功率和扫描速度下Al-Cu-Fe杂化涂层对五级钛合金(Ti6Al4V)镀层的影响。二十面体Al-Cu-Fe准晶体是一类相对较新的材料,具有独特的原子结构和有用的物理化学性质。采用光学显微镜、扫描电镜(SEM)和能谱仪(EDS)、压痕测试、x射线衍射(XRD)、腐蚀磨损测试对Ti6Al4V/Al-Cu-Fe复合材料进行了分析。由于激光与材料的相互作用,随着激光功率的增加,各样品的沉积宽度和高度、热影响区(HAZ)高度、稀释率、长径比和粉末效率显著增加。结果表明,在复合材料的形成过程中存在较多的铝和钛。压痕测试表明,在扫描速度为0.8m/min和1m/min时,平均硬度值随激光功率的增加而减小。结果表明,由于稀释效应,有一部分Ti从基体进入熔池。结果表明:在LMD过程中,可以通过原位冶金反应生成Ti、Al3Ti、Ti3Al、CuTi2;
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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