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Optimization of Process Parameters, Microstructure, and Properties of Laser Cladding Fe-Based Alloy on 42CrMo Steel Roller

机译:42CrMo钢辊上激光熔覆铁基合金的工艺参数,组织和性能的优化

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The mould foot roller is a key component of a continuous casting machine. In order to investigate the possibility of using laser cladding to repair mould foot roller, Fe-based powders and 42CrMo steel are used in this work. The laser cladding process parameters were optimized by orthogonal experiments. The chemical compositions, microstructure, properties of the cladding layer under the optimum process parameters, and substrate were systematically investigated by using optical microscopy (OM), scanning electron microscopy (SEM), energy dispersive spectroscopy (EDS), X-ray diffraction (XRD), microhardness test, wear test, and salt spray corrosion test. The results indicate that the primary factor affecting the width and depth of the cladding layer is laser power. The scanning speed also has a significant effect on the height of the cladding layer. The optimum process parameters for repairing the mould foot roller are 2 kW laser power, 4 mm/s scanning speed, and 15 g/min feeding rate of powder. Along the depth direction of the cladding layer, the microstructure of the coating gradually transforms from plane crystal, cell grains, or dendrites to equiaxed grains. The matrix is mainly martensite with retained austenite; the eutectic phase is composed of netlike M 2 B, particulate M 23 (C,B) 6 , and M 7 (C,B) 3 phase. The hardness of the cladding layer is significantly improved, about three times that of the substrate. The weight loss of the cladding layer is just half that of the substrate. Its wear resistance and corrosion resistance have been significantly improved. The work period of the laser cladding-repaired foot roller is much longer than for the surfacing welding-repaired one. In summary, laser cladding technology can increase the life of mould foot rollers.
机译:铸型脚辊是连续铸造机的关键部件。为了研究使用激光熔覆修复模具压脚的可能性,这项工作使用了铁基粉末和42CrMo钢。通过正交实验优化了激光熔覆工艺参数。通过光学显微镜(OM),扫描电子显微镜(SEM),能量色散光谱(EDS),X射线衍射(XRD)系统研究了最佳工艺参数下的熔覆层的化学成分,微观结构,性能以及基材),显微硬度测试,磨损测试和盐雾腐蚀测试。结果表明,影响包层宽度和深度的主要因素是激光功率。扫描速度也对包层的高度有显着影响。修复模具脚辊的最佳工艺参数是2 kW激光功率,4 mm / s的扫描速度和15 g / min的粉末进料速度。沿着覆层的深度方向,涂层的微观结构逐渐从平面晶体,晶胞晶粒或树突转变为等轴晶。基体主要是马氏体,残留奥氏体。共晶相由网状M 2 B,颗粒状M 23(C,B)6和M 7(C,B)3相组成。覆盖层的硬度显着提高,约为基材的三倍。覆层的重量损失仅为基板的一半。其耐磨性和耐腐蚀性得到了显着改善。激光熔覆修复的脚轮的工作时间比堆焊修复的脚轮的工作时间长得多。总而言之,激光熔覆技术可以延长模压辊的使用寿命。

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