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Integrated electricity-heat-gas network modelling for the evaluation of system resilience to extreme weather

机译:集成的电热气网络建模,用于评估系统对极端天气的适应能力

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Many energy systems rely on natural gas to fulfil their energy demand. In particular, natural gas is often used in the heating sectors as well as for electrical generation. In such systems, a comprehensive analysis of the system's resilience must account for the interdependencies between the electricity, heat, and gas sectors. Furthermore, the development of different gas supply sources can impact their ability to meet the peak day's demand. For example, liquefied natural gas (LNG) regasification facilities have a dependence on LNG delivery dates, which impact on the quantity of gas stored on a given day. In this paper, an integrated electricity-heat-gas network model has been developed for a holistic evaluation of the resilience of an energy system. Case studies based on Great Britain evaluate the impacts of gas supply shocks and LNG delivery timetables on the systems' resilience during time of extreme (cold) weather and low electricity outputs from renewable generation. The results highlight the need for gas network flexibility through reverse-flow compressors and diversity of supply sources.
机译:许多能源系统依靠天然气来满足其能源需求。特别地,天然气通常用于加热领域以及用于发电。在这样的系统中,对系统弹性的全面分析必须考虑到电力,热力和天然气部门之间的相互依赖性。此外,不同气体供应源的发展可能会影响其满足高峰日需求的能力。例如,液化天然气(LNG)的再气化设施依赖于LNG的交付日期,这会影响给定日期存储的天然气量。在本文中,已经开发了一个综合的电-热-气网络模型来对能源系统的弹性进行整体评估。基于英国的案例研究评估了在极端(寒冷)天气和可再生能源发电量低的时期,天然气供应冲击和液化天然气交付时间表对系统弹性的影响。结果表明,需要通过逆流压缩机和多种供应源来灵活地利用天然气网络。

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