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Microstructure evolution and thermal behavior of equimolar ultrafine-grained CuFe immiscible alloy

Identifikátory výsledku

  • Kód výsledku v IS VaVaI

    <a href="https://www.isvavai.cz/riv?ss=detail&h=RIV%2F00216305%3A26210%2F26%3A0199813" target="_blank" >RIV/00216305:26210/26:0199813 - isvavai.cz</a>

  • Výsledek na webu

    <a href="https://www.sciencedirect.com/science/article/pii/S0925838825047449" target="_blank" >https://www.sciencedirect.com/science/article/pii/S0925838825047449</a>

  • DOI - Digital Object Identifier

    <a href="http://dx.doi.org/10.1016/j.jallcom.2025.183183" target="_blank" >10.1016/j.jallcom.2025.183183</a>

Alternativní jazyky

  • Jazyk výsledku

    angličtina

  • Název v původním jazyce

    Microstructure evolution and thermal behavior of equimolar ultrafine-grained CuFe immiscible alloy

  • Popis výsledku v původním jazyce

    Immiscible alloys, characterized by their positive enthalpy of mixing, offer unique opportunities to tailor material properties such as strength and thermal stability. This study investigates the microstructure and thermal behavior of an equimolar CuFe immiscible alloy prepared by a combination of mechanical alloying of elemental powders and sintering by the Spark Plasma Sintering method. Mechanical alloying enabled the mixing of mutually immiscible elements and the formation of metastable supersaturated solid solution. This solid solution decomposed into a dual-phase microstructure in the temperature range of 280 degrees C - 480 degrees C. Activation energy calculations indicated that the decomposition mechanism was a spinodal decomposition followed by phase growth. After sintering, an ultrafine-grained dual-phase microstructure consisting of Cu-rich and Fe-rich phases was formed. These phases showed varying levels of supersaturation, leading to the presence of some Fe-rich phases with an FCC crystal structure at room temperature. Moreover, this supersaturation led to a decrease in the BCC/FCC phase transformation temperature of the BCC Fe-rich phases by approximately 130 degrees C. During annealing at 980 degrees C, a partial decrease in the supersaturation of the phases occurred, which was reflected in an increase in the amount of BCC Fe-rich phases. However, the temperature shift of the BCC/FCC phase transformation was retained. The grain size after annealing increased from 0.49 mu m to 0.67 mu m, which can be described as excellent thermal stability considering the high annealing temperature (90 % of the melting temperature). This exceptional thermal stability stems from the immiscible nature of the alloy, which hinders grain growth.

  • Název v anglickém jazyce

    Microstructure evolution and thermal behavior of equimolar ultrafine-grained CuFe immiscible alloy

  • Popis výsledku anglicky

    Immiscible alloys, characterized by their positive enthalpy of mixing, offer unique opportunities to tailor material properties such as strength and thermal stability. This study investigates the microstructure and thermal behavior of an equimolar CuFe immiscible alloy prepared by a combination of mechanical alloying of elemental powders and sintering by the Spark Plasma Sintering method. Mechanical alloying enabled the mixing of mutually immiscible elements and the formation of metastable supersaturated solid solution. This solid solution decomposed into a dual-phase microstructure in the temperature range of 280 degrees C - 480 degrees C. Activation energy calculations indicated that the decomposition mechanism was a spinodal decomposition followed by phase growth. After sintering, an ultrafine-grained dual-phase microstructure consisting of Cu-rich and Fe-rich phases was formed. These phases showed varying levels of supersaturation, leading to the presence of some Fe-rich phases with an FCC crystal structure at room temperature. Moreover, this supersaturation led to a decrease in the BCC/FCC phase transformation temperature of the BCC Fe-rich phases by approximately 130 degrees C. During annealing at 980 degrees C, a partial decrease in the supersaturation of the phases occurred, which was reflected in an increase in the amount of BCC Fe-rich phases. However, the temperature shift of the BCC/FCC phase transformation was retained. The grain size after annealing increased from 0.49 mu m to 0.67 mu m, which can be described as excellent thermal stability considering the high annealing temperature (90 % of the melting temperature). This exceptional thermal stability stems from the immiscible nature of the alloy, which hinders grain growth.

Klasifikace

  • Druh

    J<sub>imp</sub> - Článek v periodiku v databázi Web of Science

  • CEP obor

  • OECD FORD obor

    20501 - Materials engineering

Návaznosti výsledku

  • Projekt

  • Návaznosti

    S - Specificky vyzkum na vysokych skolach

Ostatní

  • Rok uplatnění

    2025

  • Kód důvěrnosti údajů

    S - Úplné a pravdivé údaje o projektu nepodléhají ochraně podle zvláštních právních předpisů

Údaje specifické pro druh výsledku

  • Název periodika

    Journal of Alloys and Compounds

  • ISSN

    0925-8388

  • e-ISSN

    1873-4669

  • Svazek periodika

  • Číslo periodika v rámci svazku

    1040

  • Stát vydavatele periodika

    CH - Švýcarská konfederace

  • Počet stran výsledku

    11

  • Strana od-do

  • Kód UT WoS článku

    001568891300041

  • EID výsledku v databázi Scopus

    2-s2.0-105015037139