Journal of Lanzhou University of Technology ›› 2021, Vol. 47 ›› Issue (3): 15-22.

• Materials Science and Engineering • Previous Articles     Next Articles

Phase field method study on oriented tilted dendrite growth of alloy by adaptive finite element method

ZHU Chang-sheng1,2, GAO Hong-wei1, MA Fang-lan1, FENG Li2, LEI Peng3   

  1. 1. College of Computer and Communication, Lanzhou Univ. of Tech., Lanzhou 730050, China;
    2. State Key Laboratory of Advanced Processing and Recycling of Nonferrous Metal, Lanzhou Univ. of Tech., Lanzhou 730050, China;
    3. Network & Information Center, Lanzhou Univ. of Tech., Lanzhou 730050, China
  • Received:2020-12-22 Online:2021-06-28 Published:2021-07-19

Abstract: The article established a phase field model that is an oriented tilted dendrite of alloy, and used a non-uniform grid adaptive finite element method to solve the phase field model of thin interface layer thickness. The thesis also researched the evolution process of the tilting dendrite of Al-Cu(w(Cu)=4%) alloy, and quantitatively analyzed the effect of cooling rate and the main crystal spacing on solidification structure. The results demonstrated that the cooling rate and the main crystal spacing and the pulling speed can control the growth angle of the tilting dendrite. With the increase of the cooling rate, the growth of dendrite will deviate from the preferred direction to the direction of temperature gradient. On the contrary, with the increase of main crystal spacing and pulling speed, the growth angle of dendrite will gradually deviate from the temperature gradient direction to the preferred crystal direction. In addition, compared with the uniform grid method, the adaptive finite element method reduces the running time of the CPU by an order of magnitude. And as the computational domain increases, the computational efficiency of the adaptive finite element method is higher.

Key words: phase field simulation, adaptive finite element, directional solidification, Al-4wt.%Cu alloy

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