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Tuning the thermal conductivity of hydrogenated porous magnesium hydride composites with the aid of carbonaceous additives

机译:借助碳质添加剂调节氢化多孔氢化镁复合材料的导热系数

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We synthesized solid porous pellets of the Mg-2 wt.% multiwall carbon nanotubes composite and determined their thermal conductivity in partially hydrogenated state (80-90% of their maximum hydrogen storage capacity). The thermal conductivities of the composite pellets with carbon nanotubes were up to 20% higher than thermal conductivities of the reference pellets of pure Mg prepared in a similar way. We demonstrated that the high energy ball milling employed in the synthesis of the composites has destroyed the carbon nanotubes and transformed them into chains of carbon nanoparticles of 20-30 nm in diameter. The hydride phase grew preferentially along these chains, resulting in anisotropic microstructure, with residual Mg phase forming an interpenetrating, percolating network contributing to the long-range thermal transport. On the contrary, the residual Mg formed isolated pockets in the reference pellets of pure Mg. Our work demonstrates that anisotropic additives to the hydride forming metals can improve their thermal conductivity and hydrogen storage properties by changing the topology of the two-phase metal hydride microstructure. (C) 2017 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:我们合成了Mg-2 wt。%的多壁碳纳米管复合材料的固体多孔颗粒,并确定了其在部分氢化状态下的热导率(最大储氢量的80-90%)。具有碳纳米管的复合丸粒的导热率比以类似方式制备的纯Mg参比丸粒的导热率高20%。我们证明了在复合材料的合成中使用的高能球磨已破坏了碳纳米管,并将其转变为直径为20-30 nm的碳纳米颗粒链。氢化物相沿这些链优先生长,从而形成各向异性的微观结构,残留的Mg相形成互穿的渗滤网络,有助于长距离热传输。相反,残留的Mg在纯Mg的参考颗粒中形成孤立的囊袋。我们的工作表明,形成氢化物的金属的各向异性添加剂可通过改变两相金属氢化物微观结构的拓扑结构来提高其导热性和储氢性能。 (C)2017氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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