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WREF 2012: MACRO-SYSTEM MODEL FOR HYDROGEN ENERGY SYSTEMS ANALYSIS IN TRANSPORTATION

机译:2012卷:运输氢能系统分析的宏观系统模型

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The introduction of hydrogen as an energy carrier for light-duty vehicles involves concomitant technological development of an array of infrastructure elements, such as production, delivery, and dispensing, all associated with energy consumption and emission levels. To analyze these at a system level, the suite of corresponding models developed by the United States Department of Energy and involving several national laboratories is combined in one macro-system model (MSM). The MSM uses a federated simulation framework for consistent data transfer between the component models. The framework is built to suit cross-model as well as cross-platform data exchange and involves features of "over-the-net" computation. While the MSM can address numerous hydrogen systems analysis aspects, of particular interest is the optimal deployment scenario. Depending on user-defined geographic location and hydrogen demand curve parameters, the cost-optimal succession of production/delivery/dispensing pathways undergoes significant changes (the most important of these being the transition between distributed and central hydrogen production with delivery). Some 'tipping' (break-even) points are identified.
机译:作为轻型车辆的能量载体的氢引入氢气涉及一种基础设施元件阵列的技术开发,例如生产,交付和分配,所有与能量消耗和排放水平相关。要在系统级别分析这些,美国能源部开发的相应模型套件和涉及几个国家实验室的套件组合在一个宏观系统模型(MSM)中。 MSM使用联合仿真框架进行组件模型之间的一致数据传输。该框架建立以适应跨模型以及跨平台数据交换,并涉及“净超净”计算的功能。虽然MSM可以解决许多氢系统分析方面,但特别感兴趣的是最佳部署方案。根据用户定义的地理位置和氢气需求曲线参数,生产/送货/分配途径的成本最佳连续性经历显着的变化(其中最重要的是,这些是分布式和中央氢生产与交付之间的过渡)。确定了一些'TIPPED'(休息)点。

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