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Development of a hydrogen generating thermal control for chemical hydrogen storage.

机译:开发用于化学氢存储的氢生成热控制器。

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This thesis investigated a potential improvement to hydrogen storage for fuel cells using a thermally efficient hydrogen storage method. The efficiency of the storage system was improved using a metal hydride system to act as a thermal control unit for an exothermic chemical hydrogen storage system.;A cylindrical shaped "hybrid" reactor was created to allow hydrogen production from a sodium borohydride packed bed reactor and the metal hydride. Additionally, a custom built pressure-composition-temperature apparatus was built to record the amount of hydrogen desorption from the metal hydride while isolating the metal from potential poisons such as oxygen.;Before using the chemical hydride packed bed, heat transfer through the reactor was studied using circulating water. The water experiments showed that an increase in heat flux to the reactor led to a faster desorption rate of hydrogen from the metal hydride resulting in a larger temperature drop throughout the reactor.;After the operating characteristics of the hybrid reactor were studied, a 10 wt% solution of sodium borohydride was created and pumped through the packed bed to produce enough hydrogen for a 300 W fuel cell. The amount of heat produced from the packed bed portion of the reactor was significant, but temperatures levelled to around 80°C. As expected, temperature control was directly proportional to the rate of hydrogen release from the metal hydride. On average, approximately 10% of the available heat energy was transferred to the metal hydride, and the hybrid reactor operated with gravimetric and volumetric energy densities of 0.27 kWh·kg-1 and 1.29 kWh·L-1 respectively. If the hybrid reactor is used solely to control peak temperatures, the amount of metal hydride necessary for thermal control could be decreased. Additionally, improvements in heat transfer as well as the hydrogen storage materials themselves would increase the energy density values further.;When compared to other energy storage devices, the hybrid reactor without improvements is competitive as a backup power generator due to its silent operation and large volumetric energy density. Since the hybrid reactor can provide quiet and cool energy storage in a relatively small volume, it may become an effective and efficient means for hydrogen storage with limited improvements.
机译:本文研究了利用热高效储氢方法改善燃料电池储氢的潜力。使用金属氢化物系统作为放热化学氢存储系统的热控制单元,提高了存储系统的效率。创建了圆柱形“混合”反应器,以允许从硼氢化钠填充床反应器中生产氢气,以及金属氢化物。此外,还建立了一个定制的压力-组成-温度设备,以记录从金属氢化物中解吸的氢气量,同时将金属与潜在的有毒物质(例如氧气)隔离开来;在使用化学氢化物填充床之前,需要通过反应器进行传热研究使用循环水。水实验表明,进入反应器的热通量的增加导致氢从金属氢化物中的解吸速度加快,从而导致整个反应器的温度下降幅度更大。;在研究了混合反应器的运行特性后,研究了10 wt%产生%的硼氢化钠溶液,并将其泵送通过填充床以产生足以用于300W燃料电池的氢。从反应器填充床部分产生的热量很大,但温度稳定在80℃左右。如预期的那样,温度控制与金属氢化物中氢的释放速率成正比。平均而言,大约有10%的可用热能转移到金属氢化物,混合反应堆的重量和体积能量密度分别为0.27 kWh·kg-1和1.29 kWh·L-1。如果混合反应器仅用于控制峰值温度,则可以减少热控制所需的金属氢化物的量。此外,传热和储氢材料本身的改进将进一步提高能量密度值。;与其他储能设备相比,未经改进的混合反应堆由于其静音运行和大容量而作为备用发电机具有竞争力体积能量密度。由于混合反应器可在相对较小的体积中提供安静和凉爽的能量存储,因此它可能成为氢存储的有效方法,且改进有限。

著录项

  • 作者

    St. John, Adam.;

  • 作者单位

    Queen's University (Canada).;

  • 授予单位 Queen's University (Canada).;
  • 学科 Engineering Mining.
  • 学位 M.Sc.(Eng)
  • 年度 2008
  • 页码 192 p.
  • 总页数 192
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类 矿业工程;
  • 关键词

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