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Prediction of the thermal conductivity of metal hydrides - The inverse problem

机译:金属氢化物热导率的预测-反问题

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With sustainability as an important and driving theme, not merely of research, but that of our existence itself, the effort in developing sustainable systems takes many directions. One of these directions is in the transport sector, particularly personal transport using hydrogen as fuel, which logically leads on to the problem of hydrogen storage. This paper deals with the prediction of the effective conductivity of beds of metal hydride for hydrogen storage. To enable modeling of the effective thermal conductivity of these systems, it is necessary to arrive at the functional dependence of the thermal conductivity of the solid hydride on its hydrogen concentration or content. This is the inverse problem in thermal conductivity of multiphase materials. Inverse methods in general are those where we start from known consequences in order to find unknown causes. Using published and known data of the effective thermal conductivity of the hydride-hydrogen assemblage, we arrive at the unknown hydride conductivity by analysis. Among the models available in the literature for determination of the effective conductivity of the bed from the properties of the constituent phases, the model of Raghavan and Martin is chosen for the analysis as it combines simplicity and physical rigor. The result is expected to be useful for predicting the thermal conductivity of hydride particles and determining the optimum heat transfer rates governing the absorption and desorption rates of hydrogen in the storage system.
机译:可持续性不仅是研究的重要推动力,而且是我们生存本身的驱动力,开发可持续性系统的努力有很多方向。这些方向之一是在运输领域,特别是使用氢作为燃料的个人运输,这在逻辑上导致了氢存储的问题。本文探讨了用于存储氢的金属氢化物床的有效电导率的预测。为了能够对这些系统的有效热导率进行建模,有必要得出固体氢化物的热导率对其氢浓度或含量的功能依赖性。这是多相材料热导率的反问题。一般而言,逆方法是从已知结果开始以找出未知原因的方法。使用已公布的已知氢化物-氢组合物的有效导热率数据,我们可以通过分析得出未知的氢化物电导率。在文献中可根据组成相的性质确定床的有效电导率的模型中,选择了Raghavan和Martin的模型进行分析,因为它结合了简单性和物理严格性。预期该结果可用于预测氢化物颗粒的热导率并确定控制存储系统中氢的吸收和解吸速率的最佳传热速率。

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