应用激光, 2019, 39 (3): 370, 网络出版: 2019-08-07   

真空气雾化制备激光熔覆用Fe55合金粉末研究

Study on Preparation of Fe55 Powder for Laser Cladding by Vacuum Gas Atomization
翁子清 1,2,*胡兰伟 1,3刘平 1,2,3金莹 1,2史金光 1,2
作者单位
1 浙江省冶金研究院有限公司, 浙江 杭州 310011
2 浙江亚通焊材有限公司, 浙江 杭州 310030
3 浙江省钎焊材料与技术重点实验室, 浙江 杭州 310030
摘要
针对激光熔覆专用粉末的问题, 微调材料配比, 采用真空气雾化的方法制备了激光熔覆用Fe55合金粉末。研究了不同雾化气体压力、导流管直径对粉末粒度分布的影响; 在最佳工艺参数下, 对粉末的成分、杂质含量进行了测试; 利用扫描电镜(SEM)、X射线衍射仪(XRD)对粉末形貌、相结构进行了观察与分析; 采用霍尔流速计测试粉末的流动性; 最后, 将粉末在42CrMo基体上进行激光熔覆试验, 并对涂层的硬度进行测试。结果表明, 雾化气体压力在3.5 MPa, 导流管直径6.0 mm时, 所得粉末主要分布在10~300 μm之间; 粉末具有较低的杂质含量, 其中氧含量274 ppm, 氮296 ppm, 硫含量157 ppm; 粉末形貌大多呈现为球形、类球形结构, 卫星球较少, 粉末物相结构主要由α-Fe、M-(FeCr)固溶体相组成; 粉末流动性为17 s/50 g, 表现出良好的激光熔覆性, 涂层的硬度在HRC 54.5~56.8之间。
Abstract
Focus on the question of specific powers for laser cladding, adjusted the ratio of material, The Fe55 alloy powder for laser cladding was prepared by vacuum gas atomization(VIGA). The influence of different atomized gas pressure and diameter of metal delivery tube on powder particle size distribution was studied. Under the optimum technological parameters, the composition and impurity content of the powder were tested. The morphology and phase structure of powder were observed and analyzed by SEM and XRD. The flowability of powder was tested by hall flow meter. Finally, the powder was subjected to laser cladding tests on 42CrMo substrate, and the hardness of the cladding coating was tested. The results show that when the atomizing gas pressure is 4.0 kPa and the diameter of the metal delivery tube is 6.0 mm, the powder particle size is mainly distributed between 80~600 mesh. The powder has lower impurity content, of which the oxygen content is 274 PPM, the nitrogen content is 296 PPM, and the sulfur content is 157 PPM. Powder morphology is mostly spherical or nearly spherical, with fewer satellite spheres. The powder phase structure is mainly composed of α-Fe、M-(FeCr) solid solution. The flowability of powder is 17 s/50 g. The powder exhibits good laser cladding properties, and the hardness of the cladding coating is between HRC 54.5~57.6.
参考文献

[1] FU F, ZHANG Y, CHANG G, et al.Analysis on the physical mechanism of laser cladding crack and its influence factors[J].Optik-International Journal for Light and Electron Optics, 2016, 127(1):200-202.

[2] PRZESTACKI D, MAJCHROWSKI R, MARCINIAK-PODSADNA L.Experimental research of surface roughness and surface texture after laser cladding[J].Applied Surface Science, 2016, 388(A):420-423.

[3] LIU X P, ZHANG P L, LIU Y L, et al.Research progress on strengthening phase in laser clad silicide coating[J].Materials Review A∶Review Papers, 2015, 29(1):72-75.

[4] 蔡发, 刘混举.液压支架立柱激光熔覆技术修复工艺分析[J].机械工程与自动化, 2016(4): 125-127.

[5] 贾清华, 孟飞.浅谈激光熔覆技术在液压支架立柱修复中的应用[J].同煤科技, 2018(1):17-19.

[6] LIU B, DONG S Y.Stress evaluation of laser cladding coating with critically refracted longitudinal wave based on cross correlation function[J].Applied Acoustics, 2016(101):98-103.

[7] ROTTWINKEL B, NOLKE C, KAIERLE S, et al.Crack repair of single crystal turbine blades using laser cladding technology[J].Procedia Cirp, 2014, 22(1):263-267.

[8] LEWIS S R, LEWIS R, FLETCHER D I.Assessment of laser cladding as an option for repairing/enhancing rails[J].Wear, 2015(330-331):581-591.

[9] 李春彦, 张松, 康煜平, 等.综述激光熔覆材料的若干问题[J].激光杂志, 2002, 23(3):5-9.

[10] 陈小明, 王海金, 周夏凉.激光表面改性技术及其研究进展[J].材料导报, 2018, 32(31):341-344.

[11] 赵聪硕, 邢志国, 王海斗.铁碳合金表面激光熔覆的研究进展[J].材料导报, 2018, 32(z1):418-428.

[12] 刘海青, 周伟.激光熔覆材料的研究进展[J].现代制造技术与装备, 2017(11):83-84.

[13] 郭士锐, 姚建华, 陈智君.喷嘴结构对气雾化激光熔覆专用合金粉末的影响[J].材料工程, 2013(7):50-60.

[14] 董世运, 马运哲, 徐滨士, 等.激光熔覆材料研究现状[J].材料导报, 2006, 20(6):5-9.

[15] MORIMOTO Y, MCDEVITT, MESHII M. Characterization of the Fe-A1 inhibition layer formed in the initial stages of Hot dipped galvannealing[J].ISIJ International, 1997, 37(9):906-913.

[16] 黄培云.粉末冶金原理[M].北京:冶金工业出版社, 1997:93-100.

[17] 欧阳鸿武, 陈欣, 余文焘, 等.气雾化制粉技术发展历程及展望[J].粉术冶金技术, 2007, 25(1):53-58.

[18] 马尧, 王旭, 胡宇, 等.真空气雾化制备MIM 用316L 粉末研究[J].热喷涂技术, 2017, 9(1):60-64.

[19] 赵新明, 徐骏, 朱学新, 等.气体压强对超音速气雾化中气体流场的影响[J].中国科学:E辑, 2009, 39(9):1582-1588.

翁子清, 胡兰伟, 刘平, 金莹, 史金光. 真空气雾化制备激光熔覆用Fe55合金粉末研究[J]. 应用激光, 2019, 39(3): 370. Weng Ziqing, Hu Lanwei, Liu Ping, Jin Ying, Shi Jinguang. Study on Preparation of Fe55 Powder for Laser Cladding by Vacuum Gas Atomization[J]. APPLIED LASER, 2019, 39(3): 370.

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