首页> 外文会议>2018 IEEE 9th International Conference on Mechanical and Intelligent Manufacturing Technologies >Effects of Fe addition on the microstructure and corrosion properties of quasicrystalline Al-Cu-Fe coatings
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Effects of Fe addition on the microstructure and corrosion properties of quasicrystalline Al-Cu-Fe coatings

机译:铁的添加对准晶Al-Cu-Fe涂层微观组织和腐蚀性能的影响

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The performance of material surface under wear and corrosion environments cannot be fulfilled by the conventional surface modifications and coatings. Therefore, different industrial sectors need an alternative technique for enhanced surface properties. Titanium and its alloys possess poor tribological properties which limit their use in certain industries. This paper focuses on the effect of hybrid coatings Al-Cu-Fe on a grade five titanium alloy using laser metal deposition (LMD) process. Icosahedral Al-Cu-Fe as quasicrystals are a relatively new class of materials which exhibit unusual atomic structure and useful physical and chemical properties. A 3kW continuous wave ytterbium laser system (YLS) attached to a KUKA robot which controls the movement of the cladding process was utilized for the fabrication of the coatings. The titanium cladded surfaces were investigated for its microstructure and corrosion properties at different laser processing conditions. The samples were cut to corrosion coupons and immersed into 3.5% NaCl solution at 28oC using Linear Polarization (LP) techniques. The cross-sectional view of the samples was analysed. It was found that the geometrical properties of the deposits such as width, height and the Heat Affected Zone (HAZ) 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 cladded layer showed a uniform crack free surface due to optimized laser process parameters which led to the refinement of the coatings. Sample Al-Cu-5Fe showed increase of 1538.3-times the polarization resistance of the substrate (Ti-6Al-4V alloy). Large amount of aluminium and less amount of iron favour the chemical performance of composite thereby increasing the polarization resistance.
机译:材料表面在磨损和腐蚀环境下的性能不能通过常规的表面改性和涂层来实现。因此,不同的工业部门需要替代的技术来增强表面性能。钛及其合金的摩擦学性能很差,这限制了它们在某些行业中的使用。本文重点研究了采用激光金属沉积(LMD)工艺在五级钛合金上进行Al-Cu-Fe杂化涂层的效果。二十面体Al-Cu-Fe准晶体是一类相对较新的材料,具有异常的原子结构和有用的物理和化学性质。附在库卡机器人上的3kW连续波)激光系统(YLS)用于控制覆层的运动,该系统控制着包层的运动。研究了钛包覆的表面在不同激光加工条件下的微观结构和腐蚀性能。将样品切成腐蚀试样,并使用线性极化(LP)技术将其浸入28oC的3.5%NaCl溶液中。分析样品的横截面图。已发现,由于激光与材料的相互作用,随着激光功率的增加,每个样品的沉积物的几何特性(如宽度,高度和热影响区(HAZ))显着增加。观察到在复合材料的形成中存在更多数量的铝和钛。由于优化了激光工艺参数,因此包覆层显示出均匀的无裂纹表面,从而导致了涂层的细化。样品Al-Cu-5Fe显示出基材(Ti-6Al-4V合金)的极化电阻增加了1538.3倍。大量的铝和少量的铁有利于复合材料的化学性能,从而增加了耐极化性。

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