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Automotive solar hydrogen fuelling stations: Concept design, performance testing and evaluation

机译:汽车太阳能加氢站:概念设计,性能测试和评估

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摘要

Hydrogen is expected to play an important role as an energy carrier in the transport sector in future sustainable energy strategies to meet the twin challenges of avoiding catastrophic climate change and depletion of low-cost petroleum resources. Provided the hydrogen is generated using renewable energy sources, its use in fuel cell vehicles can help to reduce greenhouse gas emissions, and contribute positively to achieving global energy sustainability and security, Automotive companies have now developed a range of commercial zero-emission hydrogen fuel cell vehicles. However, it is also essential to have a network of hydrogen fuelling stations to support the operation of hydrogen-powered vehicles, with these stations obtaining their hydrogen from zero-emission energy sources such as as solar and wind power. The aim of this thesis is thus to study theoretically and experimentally the optimal designs for zero-emission hydrogen fuelling stations for generating, storing and supplying fuel to hydrogen fuel cell vehicles. The current status of hydrogen fuelling stations around the world is first reviewed, covering numbers by type of station, geographic location, scale, type of electrolyser, form of hydrogen storage and current plans for extending hydrogen fuelling infrastructure. It was found that there were more than 224 hydrogen stations in 28 countries in 2013, managed and designed by universities, research centres, industry shareholders, governments or non-governmental organisations. Experimental data on the operation of a small-scale experimental solar-hydrogen fuelling station at RMIT’s Bundoora East campus are reported. The experimental data on the performance of the PV array, PEM electyrolyser, batteries and inverter were then compared with a simulation of this system using the HOMER micro grid power simulation software, to test the validity of the simulation. The validated HOMER model of a solar-hydrogen fuelling station was then applied to designing a medium-scale station to serve a fleet of ten fuel cell electric vehicles operating in Melbourne and a Middle East location. The options of a stand-alone solar-hydrogen station and one with grid back-up are both investigated. The optimal component sizes for PV array, electrolyser, and hydrogen storage tanks are found for all the options, and the associated levelised costs of hydrogen estimated. These levelised costs are then compared to the equivalent price of gasoline, taking into account the relative energy contents and energy efficiencies of hydrogen fuel cell vehicles and conventional internal combustion engine vehicles. Measures to enhance the economic competitiveness of the hydrogen-fuelled vehicle system, with the focus on solar-hydrogen fuelling stations in the future, are discussed, and corresponding recommendations made.
机译:在未来的可持续能源战略中,氢有望在运输部门中担当能源载体的重要角色,以应对避免灾难性气候变化和廉价石油资源枯竭的双重挑战。如果氢气是使用可再生能源产生的,则其在燃料电池汽车中的使用可以帮助减少温室气体排放,并为实现全球能源可持续性和安全性做出积极贡献,汽车公司现已开发出一系列商用零排放氢燃料电池汽车。但是,建立氢燃料站网络以支持氢动力车辆的运行也很重要,这些站要从零排放能源(例如太阳能和风能)中获取氢。因此,本发明的目的是在理论上和实验上研究用于向氢燃料电池车辆产生,存储和供应燃料的零排放氢燃料站的最佳设计。首先回顾了全世界氢燃料加氢站的当前状态,涵盖了按氢站类型,地理位置,规模,电解槽类型,氢存储形式以及当前计划扩展氢燃料基础设施的数量。研究发现,2013年,在28个国家/地区拥有超过224个加氢站,由大学,研究中心,行业股东,政府或非政府组织管理和设计。报告了有关RMIT Bundoora东校区的小型实验性太阳能加氢站运行的实验数据。然后将有关光伏阵列,PEM电解槽,电池和逆变器性能的实验数据与使用HOMER微电网功率仿真软件对该系统的仿真进行比较,以验证仿真的有效性。然后,将经过验证的太阳能加氢站的HOMER模型应用于设计中型站,为在墨尔本和中东地区运行的十辆燃料电池电动汽车的车队提供服务。都研究了独立式太阳能加氢站和带有电网备用的加氢站的选项。找到了所有选项的光伏阵列,电解槽和储氢罐的最佳组件尺寸,以及相关的平准价格氢的估计。然后将这些平准化的成本与汽油的等效价格进行比较,同时考虑到氢燃料电池汽车和常规内燃机汽车的相对能量含量和能效。讨论了未来以氢燃料加油站为重点的提高氢燃料汽车系统经济竞争力的措施,并提出了相应的建议。

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    Alazemi J;

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  • 年度 2016
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