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Lost generation: Reflections on resilience and flexibility from an energy system architecture perspective

机译:失去的一代:对能源系统架构的恢复能力和灵活性的反思

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Whole energy system modelling is a valuable tool to support the development of policy to decarbonise energy systems, and has been used extensively in the UK for this purpose. However, quantitative insights produced by such models necessarily omit potentially important features of physical and engineering reality. The authors argue that important socio-technical insights can be gained by studying critical events such as the loss of 2.1 GW generation from the electricity system of Great Britain on 9th August 2019, in conjunction with literature on the behaviour of complex systems. Among these insights is the idea that models of the operation and evolution of energy systems can never be complete. Both system behaviour (operation) and the emergence and evolution of structure in such systems are formally uncomputable. This provides a starting point for a discussion of the need for additional tools, drawn from the System Architecture literature, to support the design and realisation of future, fully-decarbonised systems with high penetrations of renewable energy. Desirable properties of System Architectures, including current and future Energy System Architectures, are discussed. These include resilience and flexibility, for which there is an extensive literature. They also include the properties of comprehensibility, which helps to make complex systems easier to operate, and of evolvability, for which a working definition is offered.
机译:整个能源系统建模是支持政策的去碳化能源系统发展的一个宝贵的工具,并已为此目的在英国被广泛使用。然而,这种模式产生的定量的见解不一定忽略的物理和工程实际的潜在的重要特征。作者认为,重要的社会技术的见解可以通过研究关键事件,如2.1 GW代来自大不列颠的电力系统2019年8月9日对复杂系统的行为的损失,结合文献中获得。这些见解是观念的运行和能源系统的演化模型永远不能完成。这两个系统的行为(操作)和结构的这种系统的出现和发展在形式上是不可计算。这提供了需要额外的工具,从系统架构文献中提取,以支持未来的设计与实现,完全脱碳系统与可再生能源的高穿透一个讨论的起点。系统架构,包括当前和未来的能源系统架构所需的特性,进行了讨论。这些包括弹性和柔韧性,为此,有广泛的文献。它们还包括可理解性,这有助于使复杂的系统更易于操作的特性,和进化能力,工作定义可供其中。

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