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超声对不锈钢基体表面激光熔注WC增强颗粒分布的影响规律研究 被引量:1

Effects of Ultrasound on Distribution of Laser Melt Injected WC Reinforced Particles on Stainless Steel Substrate Surface
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摘要 针对激光熔注WC涂层中增强颗粒聚集及熔注层开裂的问题,将超声引入激光熔注过程,在316L不锈钢基板上开展了不同送粉速率下的超声辅助激光熔注WC颗粒实验研究,分别采用不同单元内WC颗粒的数密度与Voronoi单元面积的离散系数来评价WC颗粒的聚集位置与均布程度,对比分析了超声对WC颗粒熔解程度、聚集位置、均布程度与熔注层裂纹的影响。结果表明:无超声作用下且送粉速率较大时,WC颗粒在熔注层两侧边缘聚集;当送粉速率为2~8 g/min时,超声作用下的Voronoi单元面积离散系数相比无超声作用时减小了18.7%~43.5%。这表明超声可以显著改善WC颗粒的局部聚集现象,提升WC颗粒的均布程度,从而进一步抑制熔注层裂纹的萌生。 Objective Core components of high-end equipment are prone to surface damage owing to harsh service environments.Reinforced coatings with great surface properties are able to be prepared via laser melt injection to prolong service life of core components.However,particles can easily locally aggregate during the process of laser melt injection,resulting in stress concentration and crack initiation in the coating layer.Presently,the approaches to control particle distribution mainly include process optimization,material optimization,adding reinforcement or rare earth elements,and applying external energy field.Because the acoustic cavitation and acoustic flow produced by the ultrasonic energy field in the molten pool have significant effects on microstructure regulation,defect suppression,and performance improvement,ultrasonic vibration has been applied to the fields of laser cladding and laser welding.Meanwhile,several studies on the microstructures and properties of the coating layer deposited by ultrasonic-assisted laser melt injection have been carried out.However,there are few reports on the effect of ultrasound on the distribution of laser melt injected reinforced particles.In this study,ultrasound is introduced into laser melt injection process to realize the distribution regulation of enhanced particles.Meanwhile,the variability coefficient of Voronoi cell area is adopted to analyze the distribution uniformity of WC particles,which provides a novel approach to evaluate the particle distribution in the laser melt injection layer.Methods The experimental setup for ultrasonic-assisted laser melt injection(Fig.1)is mainly composed of fiber-coupled semiconductor laser,cooling system,motion control system,powder feeder,and ultrasonic generator.The substrate used in the experiments is 316L stainless steel plate with size ofΦ100 mm×4.8 mm.The particles used in the laser melt injection are spherical WC particles with phase compositions of WC and W_(2)C with an average particle size of 75μm(Fig.2).Based on the developed experimental setup(Fig.1),the laser melt injection experiments with and without ultrasound considering various powder feeding rates are carried out.The process parameters are reported in Table 1.After conducting the laser melt injection experiments,the crosssection(perpendicular to the laser scanning direction)and longitudinal section(parallel to the laser scanning direction)of the laser melt injection layer are sampled,polished,and etched.The number density and distribution of WC particles in the melt injection layer are observed and analyzed using optical microscope.Results and Discussion Aggregation position of WC particles in the coating layer is analyzed using the quadrat method(Figs.4 and 5).With an increasing powder feeding rate,WC particles gather at the edge of the coating layer without ultrasound,while the number densities of WC particles in different cells of laser melt injection layer are relatively uniform with ultrasound.Meanwhile,a Voronoi diagram of the laser melt injection cross-section is constructed(Figs.7 and 8).It is found that the area distribution of Voronoi cell is more concentrated with ultrasound(Fig.9)and variability coefficient of Voronoi cell area is significantly reduced(Fig.10).These results indicate that ultrasound significantly improves the local aggregation of particles and uniformity of particle distribution.The effects of ultrasonic vibration on the distribution of laser melt injected reinforced particles are revealed.The acoustic cavitation and acoustic flow produced by ultrasound significantly promote the flow of the molten pool and increase the drag force of particles.WC particles continuously move from the edge of the molten pool to the center of the molten pool with a large drag force.Furthermore,the uniform distribution of particles prevents the stress concentration and inhibits the crack initiation in the laser melt injection layer.Under the condition of non-ultrasound,the macroscopic cracks appear in the laser melt injection layer with a powder feeding rate of 6 g/min,while the macroscopic cracks appear in the laser melt injection layer when the powder feeding rate reaches 8 g/min with ultrasound;accordingly,the number of cracks is significantly reduced(Figs.11 and 12).Conclusions In this study,laser melt injected WC particle strengthening layer in a 316L substrate is prepared.The results demonstrate that WC particles gather at the edge of both sides of the laser melt injection layer.Accordingly,numerous macroscopic cracks appear on the surface of the laser melt injection layer without ultrasound with a powder feeding rate of 8 g/min.The application of ultrasonic vibration suppresses the local aggregation of particles and promotes the uniform distribution of WC particles.The Voronoi cell area dispersion coefficient of molten pool decreases by 18.7%‒43.52%with ultrasound with powder feeding rates of 2‒8 g/min.Meanwhile,improving the WC particle distribution uniformity prevents the initiation of cracks in the coating layer;accordingly,the number of cracks in the laser melt injection layer are significantly reduced with ultrasound.
作者 姚喆赫 王发博 孙振强 陈智君 Liu Rong 姚建华 Yao Zhehe;Wang Fabo;Sun Zhenqiang;Chen Zhijun;Liu Rong;Yao Jianhua(Institute of Laser Advanced Manufacturing,Zhejiang University of Technology,Hangzhou 310023,Zhejiang,China;College of Mechanical Engineering,Zhejiang University of Technology,Hangzhou 310023,Zhejiang,China;Collaborative Innovation Center of High-End Laser Manufacturing Equipment(National“2011 Plan”),Hangzhou 310023,Zhejiang,China;Department of Mechanical and Aerospace Engineering,Carleton University,Ottawa KIS 5B6,Canada)
出处 《中国激光》 EI CAS CSCD 北大核心 2023年第12期92-101,共10页 Chinese Journal of Lasers
基金 国家自然科学基金(52175443,U1809220) 浙江省属高校基本科研业务费专项资金(RF-B2020002) 浙江省公益技术应用研究项目(LGJ20E050002)。
关键词 激光技术 激光熔注 超声 颗粒分布 VORONOI图 裂纹 laser technique laser melt injection ultrasound particle distribution Voronoi diagram crack
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