4.6 Article

Phase-field modelling of paramagnetic austenite-ferromagnetic martensite transformation coupled with mechanics and micromagnetics

期刊

出版社

PERGAMON-ELSEVIER SCIENCE LTD
DOI: 10.1016/j.ijsolstr.2021.111365

关键词

Phase-field model; Micromagnetics; First-order phase transition

资金

  1. European Research Council (ERC) under the European Unions Horizon 2020 research and innovation programme [743116]
  2. NSFC [11902150]
  3. German Research Foundation [DFG YI 165/1-1, DFG XU 121/7-1]
  4. 15th Thousand Youth Talents Program of China
  5. Research Fund of State Key Laboratory of Mechanics and Control of Mechanical Structures [MCMS-I-0419G01]
  6. Priority Academic Program Development of Jiangsu Higher Education Institutions

向作者/读者索取更多资源

A three-dimensional phase-field model is proposed to simulate the magnetic martensitic phase transformation, showing promising results in recapturing ferroelastic and magnetic microstructures. The model is numerically implemented in real space by finite element method and can correctly capture the influence of external stimuli on the phase transition temperature shift.
A three-dimensional phase-field model is proposed for simulating the magnetic martensitic phase transformation. The model considers a paramagnetic cubic austenite to ferromagnetic tetragonal martensite transition, as it occurs in magnetic Heusler alloys like Ni2MnGa, and is based on a Landau 2-3-4 polynomial with temperature dependent coefficients. The paramagnetic-ferromagnetic transition is recaptured by interpolating the micromagnetic energy as a function of the order parameter for the ferroelastic domains. The model is numerically implemented in real space by finite element (FE) method. FE simulations in the martensitic state show that the model is capable to correctly recapture the ferroelastic and-magnetic microstructures, as well as the influence of external stimuli. Simulation results indicate that the paramagnetic austenite to ferromagnetic martensite transition shifts towards higher temperatures when a magnetic field or compressive stress is applied. The dependence of the phase transition temperature shift on the strength of the external stimulus is uncovered as well. Simulation of the phase transition in magnetocaloric materials is of high interest for the development of energy-efficient magnetocaloric cooling devices.

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