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      Rapid alloy prototyping: Compositional and thermo-mechanical high throughput bulk combinatorial design of structural materials based on the example of 30Mn–1.2C–xAl triplex steels

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      Acta Materialia
      Elsevier BV

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          Overview of constitutive laws, kinematics, homogenization and multiscale methods in crystal plasticity finite-element modeling: Theory, experiments, applications

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            Combinatorial search of thermoelastic shape-memory alloys with extremely small hysteresis width.

            Reversibility of structural phase transformations has profound technological implications in a wide range of applications from fatigue life in shape-memory alloys (SMAs) to magnetism in multiferroic oxides. The geometric nonlinear theory of martensite universally applicable to all structural transitions has been developed. It predicts the reversibility of the transitions as manifested in the hysteresis behaviour based solely on crystal symmetry and geometric compatibilities between phases. In this article, we report on the verification of the theory using the high-throughput approach. The thin-film composition-spread technique was devised to rapidly map the lattice parameters and the thermal hysteresis of ternary alloy systems. A clear relationship between the hysteresis and the middle eigenvalue of the transformation stretch tensor as predicted by the theory was observed for the first time. We have also identified a new composition region of titanium-rich SMAs with potential for improved control of SMA properties.
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              Atomic-resolution chemical analysis using a scanning transmission electron microscope

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                Author and article information

                Journal
                Acta Materialia
                Acta Materialia
                Elsevier BV
                13596454
                July 2012
                July 2012
                : 60
                : 12
                : 4950-4959
                Article
                10.1016/j.actamat.2012.05.017
                1724e269-7cfd-436b-94e2-9777acdc3ff0
                © 2012

                http://www.elsevier.com/tdm/userlicense/1.0/

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