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Integrating hydrogen generation and storage in a novel compact electrochemical system based on metal hydrides

机译:基于金属氢化物的新型致密电化学系统中整合氢气生成和储存

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摘要

A novel electrochemical system has been developed which integrates hydrogen production, storage and compression in only one device, at relatively low cost and high efficiency. The development of efficient and reliable energy storage systems based on hydrogen technology represents a challenge to seasonal storage based on renewable hydrogen. State of the art renewable energy generation systems include separate units such as electrolyser, hydrogen storage vessel and a fuel cell system for the conversion of H2 back into electricity, when required. In this work, a compact unit integrating production and storage is proposed. The developed prototype comprises a six electrode cell assembly using an AB5 type metal hydride and Ni plates as counterelectrodes, in a 35 wt% KOH solution. During charging, hydrogen is absorbed in the metal hydride and corresponding oxygen is conveyed out of the system. Conversely, in the case of discharging hydrogen stored in the metal hydride is released to an external H2 storage. In the present prototype, released hydrogen was delivered into the hydrogen storage up to a pressure of 15 Bar. Metal hydride electrodes with chemical composition LaNi4.3Co0.4Al0.3 were prepared by high frequency vacuum melting followed by high temperature annealing at 1000O C during 8 hours. X-Ray phase analysis showed typical hexagonal structure and no traces of other intermetallic compounds belonging to the La-Ni phase diagram. Thermodynamic study has been performed in a Sieverts type of apparatus produced by Labtech. Int. During cycling, charging was run at 40 A at cell voltages of 1.7 V for two hours which corresponds to C/2 charging time. Hydrogen was released by applying a constant current of 40A for two hours until cell voltage rise from 0.5 to 1.7V, at the end of the processes. The process was studied in-situ using a gas chromatograph from Agilent. It is anticipated that the device will be integrated as a combined hydrogen generator and storage unit in a stand alone system associated to a 1 kW fuel cell.
机译:已经开发了一种新颖的电化学系统,该系统以相对较低的成本和较高的效率将氢气的产生,存储和压缩集成在一个装置中。基于氢技术的高效可靠的储能系统的发展对基于可再生氢的季节性储能构成了挑战。最先进的可再生能源发电系统包括单独的单元,例如电解槽,氢存储容器和燃料电池系统,用于在需要时将H2转换回电能。在这项工作中,提出了一个紧凑的单元,集生产和存储为一体。开发的原型包括一个六电极电池组件,该组件在35 wt%的KOH溶液中使用AB5型金属氢化物和Ni板作为对电极。在充电过程中,氢被金属氢化物吸收,相应的氧气被输送出系统。相反,在放电的情况下,金属氢化物中存储的氢被释放到外部H2存储中。在本原型中,释放出的氢气被输送到氢气储存器中,压力高达15 Bar。化学成分为LaNi4.3Co0.4Al0.3的金属氢化物电极的制备方法是:高频真空熔化,然后在1000°C下高温退火8小时。 X射线相分析显示出典型的六边形结构,没有痕迹属于La-Ni相图的其他金属间化合物。热力学研究已经在Labtech生产的Sieverts类型的设备中进行。诠释在循环期间,以1.7 V的电池电压在40 A下进行充电两个小时,这相当于C / 2的充电时间。在该过程结束时,通过施加40A的恒定电流2小时释放氢,直到电池电压从0.5V升高到1.7V。使用安捷伦的气相色谱仪对该工艺进行了现场研究。预计该设备将作为氢气发生器和存储单元的组合集成在与1 kW燃料电池相关的独立系统中。

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