Temperature field and morphology simulation of laser melting deposited Inconel718 alloy

被引:0
|
作者
Tan S.-J. [1 ]
Li D.-S. [1 ]
Ye Y. [1 ]
Qin Q.-H. [2 ]
He J.-J. [1 ]
Zou W. [1 ]
机构
[1] School of Materials Science and Engineering, Nanchang Hangkong University, Nanchang
[2] College of Engineering and Computer Science, Australian National University, Canberra
来源
Li, Duo-Sheng (duosheng.li@nchu.edu.cn) | 2018年 / Central South University of Technology卷 / 28期
基金
中国国家自然科学基金;
关键词
Inconel718; Laser melting deposition; Numerical simulation; Temperature field;
D O I
10.19476/j.ysxb.1004.0609.2018.11.16
中图分类号
学科分类号
摘要
Laser melting deposited technology was applied using an internal laser coaxial-powder feeding way, and the heat source model of among light-powder-substrate interaction was built, which was used to simulate the single channel of laser melting deposited Inconel718 alloy under different process parameters. The simulation was used by dead-live unit method, via changing the unit material properties and restarting solver to finish the change of metal powder to solid. The results show that when the scanning speed is constant, with increasing laser power from 500 W to 1000 W, the molten pool increases gradually, the highest temperature of molten pool also increases from 2494 K to 3456 K, and the width and height of deposited single channel increase. When the laser power is constant, with increasing scanning speed from 5 mm/s to 15 mm/s, the highest temperature of molten pool decreases from 2494 K to 2047 K, meantime, the width and height of deposition single channel decrease. The simulation results are almost consistent with the experimental results, thus, the model has good reliability and important application value. © 2018, Science Press. All right reserved.
引用
收藏
页码:2296 / 2304
页数:8
相关论文
共 22 条
  • [11] Niu J.-Q., Study on mechanism of interaction between laser and powder stream during coaxial fiber laser additive manufacturing, (2014)
  • [12] Wang M.-D., Research on mechanism and process of laser cladding rapid manufacturing using coaxial inside-beam powder feeding, (2008)
  • [13] Jin S.-W., He X.-L., Wu Y., Laser power attenuation by powder flow in coaxial laser cladding, Chinese Journal of Lasers, 38, 9, pp. 67-72, (2011)
  • [14] Li Y.-L., Gu D.-D., Thermal behavior during selective laser melting of commercially pure titanium powder: Numerical simulation and experimental study, Additive Manufacturing, 1-4, pp. 99-109, (2014)
  • [15] Tian M.-L., Temperature field simulation of multi channel and multi-layer stacking and research of solid parts forming process based on coaxial inside-beam powder feeding, (2014)
  • [16] Shen N.G., Chou K., Thermal modeling of electron beam additive manufacturing process: powder sintering effects, Proceedings of the 7th ASME International Manufacturing Science and Engineering Conference, (2012)
  • [17] Denlinger E.R., Jagdale V., Srinivasan G.V., Ei-Wardany T., Michaleris P., Thermal modeling of Inconel718 processed with powder bed fusion and experimental validation using in situ measurements, Additive Manufacturing, 11, pp. 7-15, (2016)
  • [18] Ahn D.G., Byun K.W., Kang M.C., Thermal characteristics in the cutting of Inconel718 super alloy using CW Nd: YAG laser, Journal of Materials Science & Technology, 26, 4, pp. 362-366, (2010)
  • [19] Shi Q.-M., Gu D.-D., Xia M.-J., Cao S.-N., Rong T., Effects of laser processing parameters on thermal behavior and melting/solidification mechanism during selective laser melting of TiC/Inconel718 composites, Optics & Laser Technology, 84, pp. 9-22, (2016)
  • [20] Shiue R.K., Chang C.T., Young M.C., Tsay L.W., The effect of residual thermal stresses on the fatigue crack growth of laser-surface-annealed AISI 304 stainless steel: Part I. Computer simulation, Materials Science and Engineering A, 364, 1-2, pp. 101-108, (2004)