首页> 外文会议>International conference on fuel cell science, engineering, and technology;FuelCell2010 >PROJECTED COST, ENERGY USE, AND EMISSIONS OF HYDROGEN TECHNOLOGIES FOR FUEL CELL VEHICLES
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PROJECTED COST, ENERGY USE, AND EMISSIONS OF HYDROGEN TECHNOLOGIES FOR FUEL CELL VEHICLES

机译:燃料电池汽车氢技术的预计成本,能源使用和排放

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Each combination of technologies necessary to produce, deliver, and distribute hydrogen for transportation use has a corresponding levelized cost, energy requirement, and greenhouse gas emission profile depending upon the technologies' efficiencies and costs. Understanding the technical status, potential, and tradeoffs is necessary to properly allocate research and development (R&D) funding.In this paper, levelized delivered hydrogen costs, pathway energy use, and well-to-wheels (WTW) energy use and emissions are reported for multiple hydrogen production, delivery, and distribution pathways. Technologies analyzed include both central and distributed reforming of natural gas and electrolysis of water, and central hydrogen production from biomass and coal. Delivery options analyzed include trucks carrying liquid hydrogen and pipelines carrying gaseous hydrogen. Projected costs, energy use, and emissions for current technologies (technology that has been developed to at least the bench-scale, extrapolated to commercial-scale) are reported. Results compare favorably with those for gasoline, diesel, and E85 used in current internal combustion engine (ICE) vehicles, gasoline hybrid electric vehicles (HEVs), and flexible fuel vehicles.Sensitivities of pathway cost, pathway energy use, WTW energy use, and WTW emissions to important primary parameters were examined as an aid in understanding the benefits of various options. Sensitivity studies on production process energy efficiency, total production process capital investment, feedstock cost, production facility operating capacity, electricity grid mix, hydrogen vehicle market penetration, distance from the hydrogen production facility to city gate, and other parameters are reported.The Hydrogen Macro-System Model (MSM) was used for this analysis. The MSM estimates the cost, energy use, and emissions tradeoffs of various hydrogen production, delivery, and distribution pathways under consideration. The MSM links the H2A Production Model, the Hydrogen Delivery Scenario Analysis Model (HDSAM), and the Greenhouse Gas, Regulated Emission, and Energy for Transportation (GREET) Model. The MSM utilizes the capabilities of each component model and ensures the use of consistent parameters between the models to enable analysis of full hydrogen production, delivery, and distribution pathways. To better understand spatial aspects of hydrogen pathways, the MSM is linked to the Hydrogen Demand and Resource Analysis Tool (HyDRA). The MSM is available to the public and enables users to analyze the pathways and complete sensitivity analyses.
机译:生产,运输和分配供运输使用的氢气所必需的每种技术组合,都有相应的均等化成本,能源需求和温室气体排放特征,具体取决于技术的效率和成本。了解技术状态,潜力和权衡是正确分配研发(R&D)资金的必要条件。 在本文中,报告了多种氢气生产,输送和分配途径的均等输送氢成本,途径能源使用以及井轮式(WTW)能源使用和排放。分析的技术包括天然气的中央和分布式重整,水的电解以及生物质和煤炭的中央制氢。分析的交付方式包括载有液态氢的卡车和载有气态氢的管道。报告了当前技术(已开发到至少台式规模,外推到商业规模的技术)的预计成本,能源使用和排放。与目前的内燃机(ICE)车辆,汽油混合电动车辆(HEV)和柔性燃料车辆中使用的汽油,柴油和E85相比,结果令人满意。 研究了通路成本,通路能源使用,WTW能源使用和WTW排放对重要的主要参数的敏感性,以帮助理解各种选择的好处。报告了对生产过程能效,总生产过程资本投资,原料成本,生产设施运营能力,电网结构,氢车辆市场渗透率,从氢生产设施到城市大门的距离以及其他参数的敏感性研究。 氢宏观系统模型(MSM)用于此分析。 MSM估算了正在考虑的各种氢气生产,输送和分配途径的成本,能耗和排放权衡。 MSM链接了H2A生产模型,氢传递情景分析模型(HDSAM)和温室气体,管制排放和运输能源(GREET)模型。 MSM利用每个组件模型的功能,并确保在模型之间使用一致的参数,从而能够分析完整的氢气生产,输送和分配路径。为了更好地了解氢途径的空间方面,MSM与氢需求和资源分析工具(HyDRA)链接在一起。 MSM向公众开放,使用户能够分析途径并完成敏感性分析。

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