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Microstructures and mechanical properties of NbCr2 and ZrCr2 Laves phase alloys prepared by powder metallurgy

机译:粉末冶金法制备NbCr2 和ZrCr2 Laves相合金的组织和力学性能

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摘要

Microstructures, mechanical properties and oxidation behavior were investigated on NbCr2 and ZrCr2 Laves phase alloys prepared by powder metallurgy (P/M), and also by arc-melting, i.e. ingot metallurgy (I/M). These properties were also evaluated, in terms of alloying, heat treatment and alloy stoichiometry. High-temperature yield strength and brittle ductile transition temperature (BDTT) were generally lower in alloys prepared by P/M process than in those prepared by I/M process while micro hardness and fracture toughness were higher in alloys prepared by P/M process than in those prepared by I/M process, irrespective of NbCr2 or ZrCr2 alloys. Also, high-temperature strength and micro hardness were higher in NbCr2 alloys than in ZrCr2 alloys while fracture toughness was lower in NbCr2 alloys than in ZrCr2 alloys, irrespective of P/M or I/M process. For oxidation behavior at 1223 K, NbCr2 alloys showed linear increase with increasing time accompanied with irregular fluctuation, while ZrCr2 alloys showed parabolic increase with increasing time. It was also found that alloy stoichiometry greatly affected micro hardness, fracture toughness and oxidation behavior in ZrCr2 alloys.
机译:研究了粉末冶金(P / M),电弧熔炼(I / M)制备的NbCr2 和ZrCr2 Laves相合金的组织,力学性能和氧化行为。这些特性还根据合金化,热处理和合金化学计量进行了评估。通过P / M工艺制备的合金的高温屈服强度和脆性韧性转变温度(BDTT)通常低于通过I / M工艺制备的合金,而通过P / M工艺制备的合金的显微硬度和断裂韧性高于在采用I / M工艺制备的合金中,与NbCr2 或ZrCr2 合金无关。同样,与P无关,NbCr2 合金的高温强度和显微硬度高于ZrCr2 合金,而断裂韧性低于ZrCr2 合金。 / M或I / M进程。对于在1223 K下的氧化行为,NbCr2 合金随时间增加呈线性增加,并伴有不规则波动,而ZrCr2 合金随时间增加呈抛物线增加。还发现合金的化学计量对ZrCr2 合金的显微硬度,断裂韧性和氧化行为有很大影响。

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  • 来源
    《Journal of Materials Science》 |2003年第4期|657-665|共9页
  • 作者单位

    Department of Metallurgy and Materials Science Graduate School of Engineering Osaka Prefecture University;

    Department of Metallurgy and Materials Science Graduate School of Engineering Osaka Prefecture University;

    Department of Metallurgy and Materials Science Graduate School of Engineering Osaka Prefecture University;

    Department of Metallurgy and Materials Science Graduate School of Engineering Osaka Prefecture University;

    Department of Metallurgy and Materials Science Graduate School of Engineering Osaka Prefecture University;

    Japan Ultra-High Temperature Materials Research Institute;

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