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On-board hydrogen storage in an adsorbent bed: Development of a multi-scale dynamic '1D-plus-1D' model

机译:吸附床中的板载储氢:开发多尺度动态'1D-Plus-1D'模型

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Reliable design, analysis and optimization of on-board adsorptive hydrogen storage systems require mathematical models that capture the key physics across multiple scales. Pellets of adsorbent may sometimes be preferred for adsorptive storage in fixed beds, compared to powders. Heat and mass transfer within individual pellets play a significant role in the overall dynamics of a fixed bed filled with adsorbent pellets. However, multi-scale dynamical model that captures the effect of pellet behavior on the overall dynamics of adsorbent bed is so far missing. In this study, a combined bedeandepellet "1D-plus-1D" model is developed and analyzed for hydrogen adsorption in a fixed bed of MOF-5 pellets at cryogenic temperatures. Specifically, a 1D axial bed model with mass, momentum and energy balance equations is coupled with a 1D radial pellet model comprising of mass and heat transfer with adsorption within the pellets present at different locations in the bed. The 1D bed and 1D pellet model equations are coupled through surface fluxes on the pellet. We show that internal diffusional resistances within pellets must be considered for pellets greater than 2 mm diameter, for parameters relevant to MOF-5 pellets. The role of various physical parameters of pellets is analyzed. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
机译:板载吸附氢气存储系统的可靠性设计,分析和优化需要数学模型,以跨多个尺度捕获关键物理。与粉末相比,有时可能优选吸附剂的粒料在固定床中的吸附储存。单个颗粒内的热量和传质在填充吸附颗粒的固定床的整体动态中起着重要作用。然而,到目前为止,多尺度动态模型捕获颗粒行为对吸附床整体动态的影响。在该研究中,开发并分析了在低温温度下的MOF-5颗粒的固定床中的氢吸附和分析了组合的Bedeandepelet“1d-plus-1d”模型。具体地,具有质量,动量和能量平衡方程的1D轴向床模型与包含质量和热传递的1D径向颗粒模型耦合,其在存在于床中不同位置的颗粒内的吸附。 1D床和1D颗粒式式方程通过颗粒上的表面磁通耦合。我们表明,对于与MOF-5颗粒相关的参数,必须考虑颗粒内的内部扩散抗性,用于大于2毫米的颗粒。分析了各种物理参数的颗粒的作用。 (c)2020氢能源出版物LLC。 elsevier有限公司出版。保留所有权利。

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