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作 者:梁飞龙[1,2] 李凯玥 师文庆[2,3,4] 朱志凯 王立珺 Liang Feilong;Li Kaiyue;Shi Wenqing;Zhu Zhikai;Wang Lijun(Naval Architecture and Shipping College,Guangdong Ocean University,Zhanjiang 524005,Guangdong,China;Guangdong Provincial Key Laboratory of Intelligent Equipment for South China Sea Marine Ranching,Guangdong Ocean University,Zhanjiang 524088,Guangdong,China;School of Electronics and Information Engineering,Guangdong Ocean University,Zhanjiang 524088,Guangdong,China;School of Materials Science and Engineering,Guangdong Ocean University,Yangjiang 529500,Guangdong,China)
机构地区:[1]广东海洋大学船舶与海运学院,广东湛江524005 [2]广东海洋大学广东省南海海洋牧场智能装备重点实验室,广东湛江524088 [3]广东海洋大学电子与信息工程学院,广东湛江524088 [4]广东海洋大学材料科学与工程学院,广东阳江529500
出 处:《中国激光》2024年第20期103-116,共14页Chinese Journal of Lasers
基 金:国家自然科学基金(62073089);广东省普通高校重点领域专项资金(2020ZDZX2061)。
摘 要:为提高316L基材的耐腐蚀性能,延长其在海洋环境下的使用寿命,利用激光熔覆技术在316L基材上通过不同温度的预热及激光重熔处理,制备了Ni基WC/CeO_(2)复合涂层。利用扫描电子显微镜、能谱仪、显微硬度计、电化学工作站以及摩擦磨损试验机对熔覆层的显微组织、显微硬度、耐腐蚀性能以及耐磨损性能进行了测试并分析了其腐蚀行为和机理。结果表明:通过预热处理可以减少涂层的裂纹,提高抗点蚀能力。另外,通过重熔法处理涂层,可以促进涂层中的大尺寸WC颗粒进一步分解,从而使碳化物硬质相的分布更加均匀,进而提高熔覆层的硬度、增强耐腐蚀性能。当预热温度为350℃时,经重熔处理的涂层表现出优良的耐磨和耐腐蚀性能,相比于未经处理的Ni基WC/CeO_(2)复合涂层,其自腐蚀电流由11.51μA·cm^(-2)降低至4.232μA·cm^(-2),磨损体积由6.8×10^(-3) mm^(3)降至1.7×10^(-3) mm^(3)。预热处理提高了涂层的耐腐蚀性能,重熔处理过程中产生的小尺寸碳化物颗粒在摩擦过程中不易脱落,提高了涂层的耐磨性能。Objective 316L stainless steel has emerged as one of the most extensively utilized stainless steels in the fabrication of marineengineering equipment components.Components that operate in harsh environments are susceptible to damage and failure.To minimize surface damage caused by wear and corrosion,high-performance coatings are typically necessitated on components that operate in the offshore-platform environments.Ni-based/WC composite coatings prepared via laser cladding exhibit remarkable wear and corrosion resistance.Employing these coatings can be instrumental in enhancing the surface characteristics of 316L stainless steel,thus ultimately extending its service life in the demanding marine environment.However,challenges arise due to significant differences in the thermal expansion coefficient and thermal conductivity between Ni-based alloy powder and WC powder.Combining this with the substantial temperature gradient resulting from rapid heating and cooling during laser cladding renders the coating susceptible to significant residual thermal stresses,thus causing cracks to emerge in the coating.To mitigate these challenges and further enhance the coating properties,Ni-based WC/CeO_(2) composite coatings with auxiliary treatments are prepared on a 316L substrate via laser cladding.Methods In this study,substrate preheating and laser melting are performed to optimize a Ni-based WC/CeO_(2) composite coating.Three types of powders are uniformly mixed and preplaced on a polished substrate using a planetary ball mill.The coatings are prepared using a laser-cladding device with a laser power of 1200 W,scanning speed of 800 mm/min,spot diameter of 3 mm,and track spacing of 1.2 mm.The substrates are preheated on a heating plate,and the coatings are fused at room temperature(25±2)℃,200℃,and 350℃,whereas another set of samples are fused under the same preheating conditions.The same laser processing parameters are used for remelting,and the samples are continuously heated to maintain a fixed temperature during las
关 键 词:激光熔覆 复合涂层 碳化钨 激光重熔 电化学腐蚀
分 类 号:TG174.4[金属学及工艺—金属表面处理]
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