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Analysis of metal hydride storage on the basis of thermophysical properties and its application in microgrid

机译:基于热物理性质的金属氢化物储存及其在微电网中的应用分析

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摘要

Present study focuses on the analysis of metal hydride hydrogen storage in renewable power generators-based microgrid (mu G) system. The design of metal hydride storage unit requires parametric analysis on the basis of its thermophysical properties such as activation/deactivation energy, enthalpy of formation, equilibrium pressure, reaction kinetics and external thermal management system. This parametric analysis helps to assess suitability of the hydride storage with hydrogen generation (electrolyzer) and utilization (fuel cell) units in mu G. Application of metal hydride in the mu G creates a sophisticated system which requires careful analysis and operating strategy for achieving manifold benefits such as higher efficiency, durability of the components and self-sufficiency. In the present study, different hydrides are selected namely, LaNi5, TiCr1.6Mn0.2, hydroalloy C5 graphite and MgH2 for performance analysis on the basis of their thermophysical properties. The performance is evaluated in different operating modes aiming for higher efficiency, components durability and system self-sufficiency (minimum griddependency). A detailed mathematical modelling is performed in the MATLAB simulation tool for performance evaluation of overall mu G system, which consists of 5 kW photovoltaic (PV), 1 kW fuel cell (FC), 5 L hydride storage and 0.6 kW electrolyzer. It was observed that the hydrogen charging and discharging processes in the hydride storage unit strongly depend on its thermophysical properties and hence require certain specific operating conditions for efficient working. Considering suitable discharging characteristics at low temperature and pressure, LaNi5 and C5 hydroalloy can be suitable for transient operation with proton exchange membrane fuel cell application. Overall energy efficiency of up to approximate to 95.49% is achieved in such type of storage-based mu G. Griddependency ratio (load demand met by grid power/total load demand) was found between 0.26 and 5.83% in different operating modes.
机译:目前研究侧重于可再生发电机基微电网(MU G)系统中金属氢化物储氢的分析。金属氢化物存储单元的设计需要参数分析,基于其热物理性质,例如活化/停用能量,形成,平衡压力,反应动力学和外部热管理系统。该参数分析有助于评估氢化物储存与氢气产生(电解槽)和利用(燃料电池)单位的适用性。MU G中的金属氢化物在MU G中的应用产生了一种复杂的系统,需要仔细分析和实现歧管的操作策略效率更高,效率较高,耐用性和自给自足。在本研究中,选择不同的氢化物即,Lani5,TiCr1.6mN0.2,氢合物C5石墨和MGH2,用于基于其热物理性能的性能分析。在不同的操作模式下评估性能,旨在提高效率,组件耐用性和系统自给自足(最低网格依存)。在MATLAB仿真工具中进行了详细的数学建模,用于对整个MU G系统进行性能评估,由5 kW光伏(PV),1 kW燃料电池(Fc),5L氢化物储存和0.6 kW电解槽组成。观察到氢化物储存单元中的氢气充电和排出过程强烈地取决于其热神耳物质,因此需要某些特定的操作条件以获得有效的工作。考虑到低温和压力下的合适的放电特性,LANI5和C5氢合金可以适用于具有质子交换膜燃料电池应用的瞬态操作。在这种基于储存的MU G.的基于储存的MU G.的整体能源效率达到约95.49%。网格依存比(通过电网电源/总负载需求满足负载需求),在不同的操作模式下发现0.26和5.83%。

著录项

  • 来源
    《Energy Conversion & Management》 |2020年第10期|113217.1-113217.20|共20页
  • 作者单位

    Indian Inst Technol Delhi Ctr Energy Studies Photovolta Lab Delhi India;

    Indian Inst Technol Delhi Ctr Energy Studies Photovolta Lab Delhi India;

    BITS Pilani Dept Mech Engn Pilani Campus Pilani 333031 Rajasthan India;

    Indian Inst Technol Delhi Ctr Energy Studies Photovolta Lab Delhi India;

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

    Fuel cell; Hydrogen; Metal hydride; Microgrid; Photovoltaic;

    机译:燃料电池;氢;金属氢化物;微电网;光伏;

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