The Influence of Process Parameters on Geometry Characteristics by Three Beams Laser Cladding

被引:0
|
作者
Liu F. [1 ]
Ji S. [1 ]
Fu G. [1 ]
Shi S. [1 ]
机构
[1] College of Mechanical and Electrical Engineering, Soochow University, Suzhou
关键词
Geometric characteristics; Laser cladding; Process parameter; Three beams; Wire feeding inside beams;
D O I
10.3901/JME.2020.15.227
中图分类号
学科分类号
摘要
In order to obtain better combination scheme of process parameters of single cladding layer with high surface quality, a new forming method of "coaxial wire feeding inside three beams" is used. Mathematical model of relationship between process parameters of layer cladding and the surface morphology is established, between process parameters and geometric characteristics. The surface morphology state of cladding layer is judged by the ratio between the unit energy density provided by the laser E1 and the required energy density of wire E2.The mathematical model of the relationship between the process parameters and the geometric characteristics of cladding layer is used to predict the variation law of the geometric characteristics, and the single factor test method is used to make experimental verification. The experienced state of cladding layer surfacemorphology is that: E1/E2< 1, the molten pool energy is "insufficient", 1.1≥E1/E2≥1.0, the energy of molten pool is in the transition stage from "insufficient" to "sufficient", E1/E2> 1.6, the energy of the molten pool is "excess", the surface quality of the coating formed in these three cases is poor. Only when 1.5≥E1/E2>1.1, the "sufficient" energy of the molten pool can fully melt the wire, which can be melted into the molten pool in a continuous and stable way, the surface of cladding layer is continuously smooth and the quality is high. The variation law of cladding layer geometric characteristics: the predicted value of the mathematical model is in good agreement with the experimental value, the defocusing amount decreases, the width W decreases, the height H increases, and the ratio of width to height ɑ decreases. Laser power increases, the width W increases, the height H decreases, and the ratio of width to height ɑ increases. Scanning speed increases, the width W decreases, the height H decreases, and the ratio of width to height ɑ increases slightly. Wire feeding speed increases, the width W and height H increases, and the ratio of width to height ɑdecreases. Conclusion is that: make laser cladding test of stainless steel 304 wire and substrate by using new forming method of "coaxial wire feeding inside three beams", selecting reasonable process parameters scheme, which meet 1.5≥E1/E2>1.1, better surface morphology can be achieved. © 2020 Journal of Mechanical Engineering.
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页码:227 / 237
页数:10
相关论文
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  • [1] DONG Shiyun, MA Yunzhe, XU Binshi, Et al., Current status of material for laser cladding, Material Review, 20, 6, pp. 5-9, (2006)
  • [2] SYED W H H, LI Lin, Effects of wire feeding direction and location in multiple layer diode laser direct metal deposition, Applied Surface Science, 248, pp. 518-524, (2005)
  • [3] SHI Shihong, FU Geyan, LI Long, Et al., Realization and research of laser cladding with method of internal wire feeding through a hollow laser beam, Chinese Journal of Laser, 37, 1, pp. 266-270, (2010)
  • [4] ZHU Gangxian, SHI Tuo, FU Geyan, Et al., Effect of process parameters on the quality of the cladding layer by the inside-laser wire feeding, Applied Laser, 33, 4, pp. 381-384, (2013)
  • [5] LIU Shuang, LIU Wei, HAROONI M, Et al., Real-time monitoring of laser hot-wire cladding of Inconel 625, Optics and Laser Technology, 62, pp. 124-134, (2014)
  • [6] SHI Jianjun, ZHU Ping, FU Geyan, Et al., Geometry characteristics modeling and process optimization in coaxial laser inside wire cladding, Optics and Laser Technology, 101, pp. 341-348, (2018)
  • [7] FU Geyan, JI Shaoshao, SHI Shihong, Et al., A device of coaxial wire feeding through beams for laser cladding
  • [8] FU Geyan, JI Shaoshao, LIU Fan, Et al., Setting method of parabola of laser cladding device and laser cladding device: CN201710662057.1
  • [9] FU Geyan, JI Shaoshao, LIU Fan, Et al., Laser cladding device: CN201710661517.9
  • [10] FU Geyan, JI Shaoshao, LIU Fan, Et al., Laser cladding device: CN201710661537.6