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首页> 外文期刊>Data in Brief >Data related to optimized process parameters influence on hardness, microstructural evolution and wear resistance performance of Al-Si-Sn-Cu/Ti-6Al-4V composite coatings
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Data related to optimized process parameters influence on hardness, microstructural evolution and wear resistance performance of Al-Si-Sn-Cu/Ti-6Al-4V composite coatings

机译:与优化的过程参数有关的数据对Al-Si-Sn-Cu / Ti-6AL-4V复合涂层的硬度,微观结构演化和耐磨性的影响

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This study investigated the metallurgical, mechanical properties and quality of coatings fabricated by direct laser metal deposition (DLMD) on Ti-6Al-4V, which were affected by the DLMD optimized process parameters. A 3-kW continuous wave ytterbium laser system (YLS) attached to a KUKA robot was used for the process. An analysis was conducted to determine the quality of the coatings in terms of hardness and wear resistance. Variables such as the time of interlayer deposition, thickness of the substrate, the initial temperature of the substrate, and the number of deposited layers were also investigated. The independent/collective effect that each process parameter had on the metallurgical and mechanical properties of the deposited Ti-6Al-4V were made clear when the processing parameters were varied. Minute pores/defects that significantly affect the metallurgical and mechanical properties of clads were also identified. The results obtained from the designed experiments showed that the depth of Heat Affected Zone (HAZ) was inversely proportional to the thickness of the substrate; as the thickness of the substrate was increased, the HAZ depth decreased. Moreover, the intensity of the laser power also affects the HAZ depth. In addition, it was discovered that the initial conditions of the substrate at room temperature also affected the coatings in relation to pre-heated conditions. The analysis conducted in identifying and quantifying the porosity showed indication that the factors such as scanning speed, laser power and powder feed rate had a predominant influence on the porosity. The grain form and structure as well as the mechanical properties of the cladded layer were significantly affected by the optimized process parameters of DLMD process. The parameters investigated had a significant impact on the hardness and wear resistance performance. Furthermore, the results revealed that the highest hardness of one of the coatings was 1.97-times the substrate which had a hardness value of 302 HV. The outstanding wear resistance performance of Al-Si-Sn-Cu/Ti-6Al-4V composite coating is attributed to major hard intermetallic phases.
机译:本研究调查了通过DLMD优化工艺参数的直接激光金属沉积(DLMD)制造的冶金,机械性能和涂料的涂层质量。使用连接到Kuka机器人的3 kW连续波YTTerbium激光系统(YLS)用于该过程。进行分析以确定硬度和耐磨性方面的涂层质量。还研究了诸如层间沉积,基板的厚度,衬底的初始温度以及沉积层的数量的变量。当加工参数变化时,清楚地清楚地对沉积的Ti-6AL-4V的冶金和机械性能进行的独立/集体效果。还鉴定了微小的毛孔/缺陷,显着影响包层的冶金和机械性能。从设计实验中获得的结果表明,热影响区(HAZ)的深度与基材的厚度成反比;随着基板的厚度增加,HAZ深度降低。此外,激光功率的强度也会影响HAZ深度。另外,发现在室温下基板的初始条件也影响了与预热条件相关的涂层。在识别和量化孔隙率时进行的分析表明,扫描速度,激光功率和粉末进料速率等因素对孔隙率具有主要的影响。通过DLMD工艺的优化工艺参数显着影响晶粒形式和结构以及包覆层的机械性能。研究的参数对硬度和耐磨性的显着影响。此外,结果显示,其中一种涂层的最高硬度为1.97倍的基材,其具有302HV的硬度值。 Al-Si-Sn-Cu / Ti-6AL-4V复合涂层的出色耐磨性性能归因于主要的硬质金属间相。

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