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Energy storage against interconnection as a balancing mechanism for a 100 renewable UK electricity grid

机译:作为100%可再生英国电网平衡机制的互连能量存储

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摘要

This study considers generation and demand challenges of a 100% renewable UK electricity grid and how this could be addressed with interconnection or energy storage. Hourly demand and electricity generation profiles for a year have been constructed: Business as Usual (BAU) with a yearly demand of 540 TWh and Green Plus (GP) with a demand of 390 TWh, Two further scenarios based on the above have been considered with electrification of heating (ASHP) and electric vehicle transportation (EV). The resultant hourly imbalances have been used to calculate the interconnection and energy storage requirements. This paper discusses the findings of the BAU scenario. The calculated interconnector capacity required was found to be 60 GW and cost £58 billion. Energy storage capacity requirements vary depending on the selected technology. Rated capacity was estimated to be 14 GW with storage capacity of 3 TWh for pumped storage, 11 GW and 2.3 TWh for liquid air, and 65 GW and 13.6 TWh for hydrogen storage, at a cost of £65, £76 and £45 billion respectively. This paper indicates that storing hydrogen in underground caverns would offer the cheapest solution. However, whilst these technological solutions can address generation and demand imbalance in a fully renewable electricity grid, there clearly remain barriers to each technology.
机译:这项研究考虑了英国100%可再生电网的发电和需求挑战,以及如何通过互联或储能解决这一问题。已经构建了一年的每小时需求和发电概况:年度需求为540 TWh的常规运行(BAU)和需求为390 TWh的Green Plus(GP),考虑了以上两个基础,加热电气化(ASHP)和电动汽车运输(EV)。由此产生的小时不平衡已用于计算互连和能量存储需求。本文讨论了BAU方案的发现。计算得出的所需互连器容量为60 GW,成本为580亿英镑。能量存储容量要求因所选技术而异。额定容量估计为14 GW,抽水式存储的容量为3 TWh,液态空气的存储容量为11 GWh和2.3 TWh,氢气的存储容量为65 GW和13.6 TWh,成本分别为65英镑,76英镑和450亿英镑分别。本文表明,将氢存储在地下洞穴中将提供最便宜的解决方案。但是,尽管这些技术解决方案可以解决完全可再生电网中的发电和需求不平衡问题,但显然每种技术仍然存在障碍。

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