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International Journal for Multiscale Computational Engineering

年間 6 号発行

ISSN 印刷: 1543-1649

ISSN オンライン: 1940-4352

The Impact Factor measures the average number of citations received in a particular year by papers published in the journal during the two preceding years. 2017 Journal Citation Reports (Clarivate Analytics, 2018) IF: 1.4 To calculate the five year Impact Factor, citations are counted in 2017 to the previous five years and divided by the source items published in the previous five years. 2017 Journal Citation Reports (Clarivate Analytics, 2018) 5-Year IF: 1.3 The Immediacy Index is the average number of times an article is cited in the year it is published. The journal Immediacy Index indicates how quickly articles in a journal are cited. Immediacy Index: 2.2 The Eigenfactor score, developed by Jevin West and Carl Bergstrom at the University of Washington, is a rating of the total importance of a scientific journal. Journals are rated according to the number of incoming citations, with citations from highly ranked journals weighted to make a larger contribution to the eigenfactor than those from poorly ranked journals. Eigenfactor: 0.00034 The Journal Citation Indicator (JCI) is a single measurement of the field-normalized citation impact of journals in the Web of Science Core Collection across disciplines. The key words here are that the metric is normalized and cross-disciplinary. JCI: 0.46 SJR: 0.333 SNIP: 0.606 CiteScore™:: 3.1 H-Index: 31

Indexed in

Modeling the Interaction between Plasticity and the Austenite-Martensite Transformation

巻 5, 発行 2, 2007, pp. 129-140
DOI: 10.1615/IntJMultCompEng.v5.i2.60
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要約

Many advanced steels, such as high strength steels and TRIP steels, owe their excellent combination of strength and ductility to the complex microstructural behaviour involving the austenite to martensite phase transformation. In this paper a physically-based model for martensitic transformation induced plasticity at the grain level is presented. In terms of output, the model provides the evolution of the overall martensite volume fraction within a grain and the overall stress-strain response of a grain, as well as the martensite volume fractions produced on each of the potential transformation systems. The model directly incorporates the coupling between elasticity, plasticity, plastic history inheritance and transformation. In this work, special attention is given to a proper incorporation of the interaction between the plastic deformation of austenite and the martensitic transformation, which is known to be twofold. On one hand, the plastic deformation of austenite is known to promote the transformation by creation of additional nucleation sites for the transformation, on the other hand the dislocation foresting leads to the mechanical stabilization of austenite, thus retarding the transformation. These two effects are incorporated in the model. To illustrate the performance of the model it has been applied to the deformation and transformation of a single austenitic grain loaded in different crystallographic directions, focusing on the transformation after the plastic prestraining of austenite.

によって引用された
  1. Kouznetsova V. G., Balmachnov A., Geers M. G. D, A multi-scale model for structure-property relations of materials exhibiting martensite transformation plasticity, International Journal of Material Forming, 2, S1, 2009. Crossref

  2. Manchiraju S., Anderson P.M., Coupling between martensitic phase transformations and plasticity: A microstructure-based finite element model, International Journal of Plasticity, 26, 10, 2010. Crossref

  3. Ammar Kais, Appolaire Benoît, Forest Samuel, Cottura Maeva, Bouar Yann Le, Finel Alphonse, Modelling inheritance of plastic deformation during migration of phase boundaries using a phase field method, Meccanica, 49, 11, 2014. Crossref

  4. Hatami M.K., Pardoen T., Lacroix G., Berke P., Jacques P.J., Massart T.J., Towards ultra-high ductility TRIP-assisted multiphase steels controlled by strain gradient plasticity effects, Journal of the Mechanics and Physics of Solids, 98, 2017. Crossref

  5. References, in Crystal Plasticity Finite Element Methods, 2010. Crossref

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