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Microstructure and hydrogen storage properties of V_(48)Fe_(12)Ti_(15-x)Cr_(25)Al_x (x=0,1) alloys

机译:V_(48)Fe_(12)Ti_(15-x)Cr_(25)Al_x(x = 0,1)合金的组织和储氢性能

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The microstructure and hydrogen storage characteristics of V48Fe12Ti15-xCr25Alx (x = 0, 1) alloys prepared by vacuum arc melting were studied by X-ray diffraction, scanning electron microscopy, transmission electron microscopy, and pressure-composition isotherm measurements. It was confirmed that all of the alloys comprise a BCC phase, a Ti-rich phase, and a TiFe phase. Al as a substitute for part of the Ti content caused an increase of lattice parameters of the BCC phase and of the equilibrium pressures of hydrogen desorption, but decrease of the hydrogen storage capacities. The kinetic mechanism of the hydrogenation and dehydrogenation of the alloys was investigated by the classical Johnson -Mehl-Avrami equation. The reaction enthalpies (Delta H) for the dehydrogenation of alloys without and with Al were calculated by the Van't Hoff equation based on the PCI measurement data, which are 30.12 +/- 0.14 kJ/mol and 28.02 +/- 0.46 kJ/mol, respectively. The thermal stability of the metal hydride was measured by differential scanning calorimetry. The hydrogen desorption activation energies were calculated using the Kissinger method as 79.41 kJ/mol and 83.56 kJ/mol for x = 0 and 1, respectively. The results suggest that the substitution of titanium with aluminum improves the thermodynamic properties of hydrogen storage and reduces the kinetic performance of hydrogen desorption. (C) 2019 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:通过X射线衍射,扫描电子显微镜,透射电子显微镜和压力组成等温线测量,研究了真空电弧熔化制备的V48Fe12Ti15-xCr25Alx(x = 0,1)合金的微观结构和储氢特性。证实所有合金都包括BCC相,富Ti相和TiFe相。 Al代替Ti含量的一部分引起BCC相的晶格参数的增加和氢解吸的平衡压力的增加,但是氢存储容量的降低。用经典的Johnson-Mehl-Avrami方程研究了合金氢化和脱氢的动力学机理。根据PCI测量数据,通过Van't Hoff方程计算出无铝和含铝合金的脱氢反应焓(ΔH),分别为30.12 +/- 0.14 kJ / mol和28.02 +/- 0.46 kJ /摩尔。通过差示扫描量热法测量金属氢化物的热稳定性。对于x = 0和1,使用Kissinger方法计算出的氢解吸活化能分别为79.41 kJ / mol和83.56 kJ / mol。结果表明,用铝替代钛可改善储氢的热力学性质,并降低氢解吸的动力学性能。 (C)2019氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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