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Finite element model for charge and discharge cycle of activated carbon hydrogen storage

机译:活性炭储氢充放电循环的有限元模型

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摘要

One of the main challenges to introduce hydrogen on the energy market is to improve onboard hydrogen storage and develop more efficient distribution technologies to increase the amount of stored gas while lowering the storage pressure. The physisorption of hydrogen on activated carbons (AC) is being investigated as a possible route for hydrogen storage. The objective of this work is to study the performance of adsorption-based hydrogen storage units from a "systems" point of view. A realistic two-dimensional axisymmetric geometric model which couples mass, momentum and energy balances is established based on the thermodynamic conservation laws using finite element method as implemented in COMSOL Multiphysics™. We consider the charging and discharging of the storage unit at a rated pressure of 9 MPa, and at an initial temperature of 302 K. The results are compared with experimental data obtained at the Hydrogen Research Institute of the University of Quebec at Trois-Rivieres. The storage tank is cooled by ice water. Research results show that both the simulated variations of pressure and temperatures during charge and discharge processes are in good agreement with the experimental data. The temperatures in the central region of tank are higher than those at the entrance and near the wall at the end of charge time while they are lower than those at the entrance and near the wall at the end of discharge time. The velocities are largest at the entrance, and decrease gradually along the axis of the tank. Owing to thermal effects, the larger flow rates result in less amount of adsorption in the condition of the same charging pressure. Hence measures of increasing heat transfer should be adopted, such as increasing the thermal conductivity of the storage bed. From the point of view of storage capacity, it is therefore possible to realize rapid hydrogenation, which is conducive to the use of such systems for on-board hydrogen storage based on activated carbon adsorption.
机译:在能源市场上引入氢气的主要挑战之一是改善车载氢气存储并开发更有效的分配技术,以增加存储气体的量,同时降低存储压力。氢在活性炭(AC)上的物理吸附正在研究中,作为可能的储氢途径。这项工作的目的是从“系统”的角度研究基于吸附的储氢装置的性能。基于热力学守恒定律,使用COMSOL Multiphysics™中实施的有限元方法,建立了耦合质量,动量和能量平衡的逼真的二维轴对称几何模型。我们考虑在9 MPa的额定压力和302 K的初始温度下对存储单元进行充电和放电。将结果与魁北克大学Trois-Rivieres大学氢研究所获得的实验数据进行比较。储水箱被冰水冷却。研究结果表明,充放电过程中压力和温度的模拟变化与实验数据吻合良好。在充电时间结束时,储罐中央区域的温度高于入口处和壁附近的温度,而在放电时间结束时,其温度低于入口处和壁附近的温度。速度在入口处最大,并沿水箱轴线逐渐减小。由于热效应,在相同的充气压力下,较大的流速导致较少的吸附量。因此,应该采取增加热传递的措施,例如增加存储床的热导率。从存储容量的角度来看,因此可以实现快速氢化,这有利于将这种系统用于基于活性炭吸附的车载氢存储。

著录项

  • 来源
    《International journal of hydrogen energy》 |2012年第1期|p.802-810|共9页
  • 作者单位

    School of Automotive Engineering, Wuhan University of Technology, Hubei 430070, China, Hydrogen Research Institute, Universite du Quebec d Trois-Riuieres, QC G9A 5H7, Canada;

    School of Automotive Engineering, Wuhan University of Technology, Hubei 430070, China;

    Hydrogen Research Institute, Universite du Quebec d Trois-Riuieres, QC G9A 5H7, Canada;

    Hydrogen Research Institute, Universite du Quebec d Trois-Riuieres, QC G9A 5H7, Canada;

    Hydrogen Research Institute, Universite du Quebec d Trois-Riuieres, QC G9A 5H7, Canada;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    hydrogen storage; activated carbon; adsorption; charge; discharge; finite element;

    机译:储氢活性炭;吸附收费;排出;有限元;
  • 入库时间 2022-08-18 00:28:16

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