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High-temperature oxidation behaviour of low-entropy alloy to medium- and high-entropy alloys

机译:低熵合金对中高熵合金的高温氧化行为

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The high-temperature oxidation behaviour of CoCrNi, CoCrNiMn, and CoCrNiMnFe equimolar alloys was investigated. All three alloys have a single-phase face-centred cubic structure. Thermogravimetric analyses (TGA) were conducted at temperatures ranging from 800 to 1000 A degrees C for 24 h in dry air. The kinetic curves of the oxidation were measured by TGA, and the microstructure and chemical element distribution in different regions of the specimens were analysed. The oxidation kinetics of the three alloys followed the two-stage parabolic rate law, with rate constants generally increasing with increasing temperature. CoCrNi displayed the highest resistance to oxidation, followed by CoCrNiMnFe and CoCrNiMn exhibiting the least resistance to oxidation. The addition of Mn to CoCrNi increased the oxidation rate. The oxidation resistance of CoCrNiMn was enhanced by the addition of Fe. Less Mn Content and the formation of more Cr2O3 were responsible for the reduction in the oxidation rates of CoCrNiMnFe. The calculated activation energies of CoCrNiMn and CoCrNiMnFe at 800, 850 and 900 A degrees C were 108 and 137 kJ mol(-1), respectively, and are comparable to that of Mn diffusion in Mn oxides. The diffusion of Mn through the oxides at 800-900 A degrees C is considered to be the rate-limiting process. The intense diffusion of Cr at 1000 A degrees C contributed to the formation of CrMn1.5O4 spinel with Mn in the outer layer of CoCrNiMn and Cr2O3 in the outer layer of CoCrNiMn.
机译:研究了COCRNI,COCRNIMN和COCRNIMNFE等摩尔合金的高温氧化行为。所有三种合金都有一个单相面对的立方结构。在干燥空气中在800至1000℃的温度下进行热量分析(TGA)。通过TGA测量氧化的动力学曲线,分析了样本不同区域的微观结构和化学元素分布。三种合金的氧化动力学跟随两级抛物率法,速率常数通常随着温度的增加而增加。 COCRNI展示了氧化的最高抗性,其次是COCRNIMNFE和COCRNIMN表现出对氧化最小的抵抗力。添加Mn至CoCrni增加了氧化率。通过添加Fe来增强Cocrimn的氧化抗性。较少的Mn含量和更多CR2O3的形成负责COCRNIMNFE的氧化率的降低。在800,850和900℃下COCRNIMN和COCRNIMNFE的计算活化能量分别为108和137kJ摩尔(-1),并且与Mn氧化物中的Mn扩散相当。 Mn通过氧化物在800-900℃下的扩散被认为是速率限制过程。 Cr在1000℃下的强烈扩散有助于在COCRNIMN的外层中与COCRNIMN和CR2O3的外层中的MN形成CRMN1.5O4尖晶石。

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