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首页> 外文期刊>Journal of Alloys and Compounds: An Interdisciplinary Journal of Materials Science and Solid-state Chemistry and Physics >Electrochemical hydriding of nanocrystalline Mg-Ni-X (X?= Co, Mn, Nd) alloys prepared by mechanical alloying and spark plasma sintering
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Electrochemical hydriding of nanocrystalline Mg-Ni-X (X?= Co, Mn, Nd) alloys prepared by mechanical alloying and spark plasma sintering

机译:通过机械合金化和火花等离子体烧结制备的纳米晶Mg-Ni-X(X = = Co,Mn,Nd)合金的电化学水化

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AbstractIn this work, MgNi26, MgNi26Mn10, MgNi26Co10 and MgNi26Nd10 alloys were prepared by mechanical alloying (MA) and subsequent spark plasma sintering (SPS). Mechanical alloying leads to a grain refinement and increases the concentration of lattice defects. SPS technology provides a compact material but with high porosity, consequently creating a high internal surface area within the volume of sample. The combination of the MA and SPS techniques produces a promising material in terms of fast hydriding kinetics and a high content of absorbed hydrogen. All samples were electrochemically hydrided in a 6?mol/L KOH solution at 80?°C for 480?min. The microstructures of the alloys were characterized by scanning electron microscopy and energy dispersive spectrometry. The phase compositions were characterized by X-ray diffraction, and the total hydrogen content in the hydrided pellets was measured using an inert gas fusion analyser. The dehydriding process was studied by thermogravimetry and mass spectrometry. The highest total amount of hydrogen was absorbed by the MgNi26Nd10 alloy, nearly 1.8?wt%. The main hydriding product was the binary hydride MgH2. The results of the mass spectrometry analysis reveal a significant reduction in the temperature of hydrogen evolution from magnesium hydride, probably due to the formation of fine microstructures of the hydrogenated alloys and catalytic effect of Ni. The decomposition temperature was reduced by more than 200?°C as compared to the commercial MgH2.Highlights?Highly porous but compact alloy samples were prepared by SPS.?Two forms of MgH2were detected by XRD after electrochemical hydriding.?The presence of unreacted Mn catalyses MgH2decomposition.?Mg12Nd phase reacts with hydrogen and forms MgH2and NdH2.]]>
机译:<![CDATA [ 抽象 在本工作中,通过机械合金化(MA)和随后的火花制备MGNI26,MgNI26MN10,MgNI26CO10和MgNI26ND10合金血浆烧结(SPS)。机械合金化导致晶粒细化并增加晶格缺陷的浓度。 SPS技术提供紧凑的材料,但具有高孔隙度,因此在样品的体积内产生高内表面区域。在快速水合动力学和高含量的吸收氢气方面,MA和SPS技术的组合产生了有希望的材料。将所有样品在80Ω℃下以6·摩尔/ L KOH溶液电化学水化学水化学。通过扫描电子显微镜和能量分散光谱法表征了合金的微观结构。通过X射线衍射表征相组合物,并使用惰性气体融合分析仪测量水料颗粒中的总氢含量。通过热重试验和质谱法研究了脱水过程。通过MgNi26ND10合金吸收最高的氢气量,近1.8wt%。主要的水合产物是二元氢化物MGH 2 。质谱分析的结果揭示了氢化镁的氢进化温度的显着降低,可能是由于氢化合金的细胞结构和Ni的催化作用的形成。与商业MGH 2 亮点 通过sps制备高度多孔但紧凑的合金样本。 两种形式的mgh < CE:INF LOC =“POST”> 2 通过XRD在电化学水中进行检测。 存在未反应的MN Catalys ES MGH 2 分解。 mg 12 nd相与氢气反应并形成mgh 2 和ndh 2 ]]>

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