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Experimental assessment of thin film high pressure metal hydride material properties

机译:薄膜高压金属氢化物材料性能的实验评估

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摘要

High pressure metal hydrides are materials that can be used both to store and to compress hydrogen effectively. In order to meet the U. S. Department of Energy techno-economic targets for storage and compression of hydrogen, new material formulations need to be identified and characterized. A novel high-throughput integrated methodology has been developed, allowing for high pressure metal hydride material characterization with reduced time and efforts. The methodology integrates an optical system that can detect the deflection of thin layer material cantilevers during uptake and release of hydrogen. A Matlab (R) code has also been developed and integrated, allowing for the identification of pressure-temperature profiles in regard to the cantilever deflection during absorption and desorption. The methodology has been successfully validated for low pressure (Pd hydride) and high pressure (TiCr1.9 hydride) materials, comparing the predicted thermodynamic properties for thin layer materials with the bulk material data available in the literature. The difference between the predicted reaction enthalpy and entropy and the literature data for the low-pressure material is below 10%. The high-pressure material predicted enthalpy and entropy values are also in excellent agreement with the literature data with differences less than 4%. (C) 2018 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:高压金属氢化物是可用于有效存储和压缩氢气的材料。为了满足美国能源部关于氢的存储和压缩的技术经济目标,需要确定和表征新的材料配方。已经开发了一种新颖的高通量集成方法,可以用较少的时间和精力来表征高压金属氢化物。该方法集成了一个光学系统,该系统可以检测出在吸收和释放氢期间薄层材料悬臂的偏转。还开发并集成了Matlab(R)代码,从而可以识别有关吸收和解吸过程中悬臂偏转的压力-温度曲线。该方法已成功验证了低压(Pd氢化物)和高压(TiCr1.9氢化物)材料的有效性,将薄层材料的预测热力学性质与文献中提供的大量材料数据进行了比较。预测的反应焓和熵与低压材料的文献数据之间的差异低于10%。高压材料的预测焓和熵值也与文献数据非常吻合,差异小于4%。 (C)2018氢能出版物有限公司。由Elsevier Ltd.出版。保留所有权利。

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