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Global energy storage demand for a 100 renewable electricity supply

机译:全球能源存储需求100%可再生电力供应

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This study demonstrates – based on a dynamical simulation of a global, decentralized 100% renewable electricity supply scenario – that a global climate-neutral electricity supply based on the volatile energy sources photovoltaics (PV), wind energy (onshore) and concentrated solar power (CSP) is feasible at decent cost. A central ingredient of this study is a sophisticated model for the hourly electric load demand in >160 countries. To guarantee matching of load demand in each hour, the volatile primary energy sources are complemented by three electricity storage options: batteries, high-temperature thermal energy storage coupled with steam turbine, and renewable power methane (generated via the Power to Gas process) which is reconverted to electricity in gas turbines. The study determines – on a global grid with 1°×1° resolution – the required power plant and storage capacities as well as the hourly dispatch for a 100% renewable electricity supply under the constraint of minimized total system cost (LCOE). Aggregating the results on a national level results in an levelized cost of electricity (LCOE) range of 80-200 EUR/MWh (on a projected cost basis for the year 2020) in this very decentralized approach. As a global average, 142 EUR/MWh are found. Due to the restricted number of technologies considered here, this represents an upper limit for the electricity cost in a fully renewable electricity supply.
机译:本研究表明 - 基于全球性,分散的100%可再生电力供应情景的动态模拟 - 基于基于挥发性能源光伏(PV),风能(陆上)和集中的太阳能电力的全球气候中性电力供应( CSP)以体面的成本是可行的。该研究的中央成分是> 160个国家的每小时电负荷需求的复杂模型。为了保证每小时负载需求的匹配,挥发性的主要能源由三个电力存储选项补充:电池,高温热能存储器,耦合汽轮机,可再生电甲烷(通过电源产生气体过程)重新转换为燃气轮机的电力。该研究确定 - 在具有1°×1°的全局网格上,在最小化总系统成本(LCoE)的约束下,所需的电厂和存储容量以及每小时调度100%可再生电力供应。在这种非常分散的方法中,将国家水平的结果汇总为80-200欧元/毫克/毫克/兆瓦(为期2020年的预计成本基础)。作为全球平均水平,发现了142欧元/兆瓦。由于这里考虑的局限性的限制,这代表了完全可再生电力供应中的电力成本的上限。

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