Monitoring of laser metal-wire additive manufacturing temperature field using infrared thermography

被引:0
|
作者
Zhu J. [1 ]
Ling Z. [1 ]
Du F. [1 ]
Ding X. [2 ,3 ]
Li H. [1 ]
机构
[1] School of Material Science and Engineering, Chongqing University, Chongqing
[2] Chongqing Institute of Green and Intelligent Technology, Chinese Academy of Sciences, Chongqing
[3] Chongqing Key Laboratory of Additive Manufacturing Technology and Systems, Chongqing
来源
Ding, Xueping (dingxueping@cigit.ac.cn) | 2018年 / Chinese Society of Astronautics卷 / 47期
关键词
Additive manufacturing; Infrared thermography; Laser metal-wire; Wire feeding speed;
D O I
10.3788/IRLA201847.0604002
中图分类号
学科分类号
摘要
For achieving precisely "controlling shape and performance" of components by additive manufacturing, scientific understanding is needed for thermal process. Taking laser metal-wire additive manufacturing (AM) under vacuum and using single-pass as an example, the thermal process was monitored based on infrared (IR) thermography. The effect of wire feeding speed on temperature field, thermal cycle, cooling rate was analyzed. The width of cladding layer and defect were studied based on IR thermography. The results show that the temperature monitoring was achieved. Along the length of cladding layer, the maximum temperature for monitoring point increased and then the cooling rate decreased. With wire feeding speed increasing, it led to the decrease of cooling rate for monitoring point at 1/4, 2/4, 3/4 of cladding layer. In addition, the width of cladding layer could be predicted and the location of defect could be located with the help of IR thermography analysis. © 2018, Editorial Board of Journal of Infrared and Laser Engineering. All right reserved.
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共 13 条
  • [1] Wang H., Materials' fundamental issues of laser additive manufacturing for high-performance large metallic components, Acta Aeronautica et Astronautica Sinica, 35, 10, pp. 2690-2698, (2014)
  • [2] Wu W., Xiao D., Mao X., Automatic design and laser additive manufacturing of supe-light structure of metal part, Infrared and Laser Engineering, 45, 11, (2016)
  • [3] Ding D.H., Pan Z.X., Cuiuri D., Et al., Wire-feed additive manufacturing of metal components: technologies, developments and future interests, International Journal of Advanced Manufacturing Technology, 81, 1, pp. 465-481, (2015)
  • [4] Xiong J., Forming characteristics in multi-layer single-bead GMA additive manufacturing and control for deposition dimension, (2014)
  • [5] Cong B., Ding J., Williams S., Effect of arc mode in cold metal transfer process on porosity of additively manufactured Al-6.3% Cu alloy, The International Journal of Advanced Manufacturing Technology, 76, 9-12, pp. 1593-1606, (2015)
  • [6] Wang F., Williams S., Colegrove P., Et al., Microstructure and mechanical properties of wire and arc additive manufactured Ti-6Al-4V, Metallurgical and Materials Transactions A, 44A, pp. 968-977, (2013)
  • [7] Jhavar S., Jain N.K., Paul C.P., Development of micro-plasma transferred arc (μ-pta) wire deposition process for additive layer manufacturing applications, Journal of Materials Processing Technology, 214, pp. 1102-1110, (2014)
  • [8] Matz J.E., Eagar T.W., Carbide formation in alloy 718 during electron-beam solid freeform fabrication, Metallurgical and Materials Transactions A, 33, pp. 2559-2567, (2002)
  • [9] Heralic A., Monitoring and control of robotized laser, (2012)
  • [10] Chivel Y., Optical in-process temperature monitoring of selective laser melting, Physics Procedia, 41, pp. 904-910, (2013)