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Integration of a hydrogen economy into the German energy system: an optimising modelling approach

机译:将氢经济融入德国能源系统:一种优化的建模方法

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Possible limitations of the oil supply are increasingly triggering the search for alternative fuels, especially hydrogen. This paper describes a novel modelling approach developed to assess the geographic and temporal set-up of an infrastructure for a hydrogen-based transport system in Germany till 2030 and to analyse the effects on the national energy system. The results show that the fossil hydrogen production dominates while the infrastructure is being developed and that the mix between gas and coal is highly sensitive to the price ratios. Even in this case, a remarkable CO_2 reduction is achievable. In the first decade, decentralised plants play an important role, but also industrial by-product hydrogen. The introduction of hydrogen in areas with high population density minimises infrastructure costs. Liquefied hydrogen is economic with large plants and dispersed hydrogen demand. In the long run, co-production of electricity and hydrogen in IGCC plants (with CCS) is a promising option, particularly under restrictive CO_2 regimes.
机译:石油供应的可能限制越来越多地引发人们寻找替代燃料,尤其是氢气的需求。本文介绍了一种新颖的建模方法,旨在评估到2030年德国氢基运输系统基础设施的地理和时间设置,并分析其对国家能源系统的影响。结果表明,在基础设施建设过程中,化石氢的生产占主导地位,天然气与煤炭的混合对价格比高度敏感。即使在这种情况下,也可以实现显着的CO_2减少。在最初的十年中,分散的工厂起着重要的作用,但氢也是工业副产品。在人口密度高的地区引入氢气可使基础设施成本降至最低。液化氢对于大型工厂和分散的氢需求而言是经济的。从长远来看,在IGCC工厂(与CCS)联合生产电力和氢气是一种有前途的选择,特别是在限制性CO_2体制下。

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