材料科学技术(英文版)2021,Vol.77Issue(18) :252-268.

Morphological stability of three-dimensional cementite rods in polycrystalline system:A phase-field analysis

Tobias Mittnacht P.G.Kubendran Amos Daniel Schneider Britta Nestler
材料科学技术(英文版)2021,Vol.77Issue(18) :252-268.

Morphological stability of three-dimensional cementite rods in polycrystalline system:A phase-field analysis

Tobias Mittnacht 1P.G.Kubendran Amos 2Daniel Schneider 1Britta Nestler1
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作者信息

  • 1. Institute of Applied Materials(IAM-CMS),Karlsruhe Institute of Technology(KIT),Strasse am Forum 7,76131 Karlsruhe,Germany;Institute of Digital Materials Science(IDM),Karlsruhe University of Applied Sciences,Moltkestr.30,76133 Karlsruhe,Germany
  • 2. Institute of Applied Materials(IAM-CMS),Karlsruhe Institute of Technology(KIT),Strasse am Forum 7,76131 Karlsruhe,Germany;Department of Metallurgical and Materials Engineering,National Institute of Technology,Tiruchirappalli-620015,Tamil Nadu,India
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Abstract

Transformations accompanying shape-instability govern the morphological configuration and distribu-tion of the phases in a microstructure.Owing to the influence of the microstructure on the properties of a material,in the present work,the stability of three-dimensional rods in a'representative'polycrystalline system is extensively analysed.A multiphase-field model,which recovers the physical laws and sharp-interface relations,and includes grain boundary diffusion,is adopted to investigate the morphological evolution of the precipitate.Moreover,the efficiency of the numerical approach is ensured by establish-ing the volume-preserving chemical equilibrium through the incorporation TCFe8(CALPHAD)data and solving phase-field evolution in the Allen-Cahn framework.The morphological evolution of the rod in the representative multiphase system exhibits a unique transformation mechanism which is significantly different from the evolution of an isolated finite-structure.It is realised that,in a polycrystalline arrange-ment,irrespective of the initial size of the rod,the shape-change begins with the energy-minimising events at the triple junctions.This early transformation renders a characteristic morphology at the longi-tudinal ends of the structure,which introduces sufficient driving-force through the curvature-difference for the subsequent morphological changes.The continued mass transfer to the terminations,ultimately,breaks-off the rod into separate entities that are entangled in the grain boundary.With increase in the aspect ratio of the rod,it is identified that the source of mass transfer,which turns into the ovulation site,shifts from the centre.This increases the number of fragmentation events and introduces satellite particle.The size of the satellite particle is dictated by a definite ovulation criterion,which is ascertained by examining the transformation of different-sized rods.A comprehensive understanding of the trans-formation kinetics and mechanism governing the morphological evolution of the rods in a polycrystalline system is rendered in this work.

Key words

Shape instability/Pearlite spheroidization/Sub-critical annealing/Phase-field simulations

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基金项目

出版年

2021
材料科学技术(英文版)
中国金属学会 中国材料研究学会 中国科学院金属研究所

材料科学技术(英文版)

CSTPCDCSCDSCI
影响因子:0.657
ISSN:1005-0302
参考文献量72
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