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首页> 外文期刊>High temperature materials and processes >Correlation between Travel Speed, Microstructure, Mechanical Properties and Wear Characteristics of Ni-Based Hardfaced Deposits over 316LN Austenitic Stainless Steel
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Correlation between Travel Speed, Microstructure, Mechanical Properties and Wear Characteristics of Ni-Based Hardfaced Deposits over 316LN Austenitic Stainless Steel

机译:316LN奥氏体不锈钢生产Ni基干沉积物的行进速度,微观结构,机械性能和磨损特性的相关性

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Laser hardfacing were produced using a high power Disk laser of 4 kW maximum power as a heat source to melt and bond the Colmonoy-5 powder on to AISI 316 LN stainless steel substrate. Significant difference in melting points between the austenitic stainless steel (ASS) substrate and Ni-based Colmonoy alloy results in substantial dilution of the hardfaced deposit from the substrate. In this present study, the effect of travel speed (TS) on microstructure, microhardness and wear characteristics laser hardfaced deposits were investigated. The phase constitution, microstructure and hardness of laser hardfaced deposits were examined by optical microscope, scanning electron microscope, energy dispersion spectroscopy, x-ray diffraction and Vickers hardness tester. The TS was varied between 300 and 500?mm/min. The other parameters such as, laser power, powder feed rate, and defocusing distance were kept constant. From this investigation, it is found that the deposit hardness increased from 750 HV to 800 HV with decreasing in TS. The TS increases, bead height decreased and dilution and depth of penetration increased. Due to higher TS the faster cooling rate takes place, it causes the cracking and porosity. Microhardness and wear resistance are slightly improved in the TS of 400?mm/min. The microstructures of deposit layer are composed of Ni-rich carbide, boride and silicide, this are the responsible for higher hardness and better wear resistance.
机译:使用4kW最大功率的高功率盘激光器产生激光处理,作为热源,以熔化并将Colmonoy-5粉末粘合到AISI 316 LN不锈钢基板上。奥氏体不锈钢(ASS)基材和基于Ni的电解合金之间的熔点差异显着差异导致从基材的硬敷沉积物稀释。在本研究中,研究了行进速度(TS)对微观结构,微硬度和磨损特性激光硬敷沉积物的影响。通过光学显微镜,扫描电子显微镜,能量分散光谱,X射线衍射和维氏硬度测试仪检查激光硬敷沉积物的相体积,微观结构和硬度。 TS在300至500℃/分钟之间变化。其他参数,例如激光功率,粉末进料速率和散焦距离保持恒定。从这次调查中,发现沉积硬度从750 HV到800 HV增加,随着TS的降低。 TS增加,珠子高度降低,稀释和渗透深度增加。由于TS更高,使冷却速度更快,导致裂缝和孔隙率。在400毫米/分钟的TS中,微硬度和耐磨性略微改善。沉积层的微观结构由Ni的碳化物,硼化物和硅化物组成,这是对更高硬度和更好的耐磨性的负责。

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