双气体和电能传输的概念

P. Favre-Perrod, A. Bitschi
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引用次数: 5

摘要

电力生产分散化的趋势、随机发电机所占份额的上升以及更严格的消费者需求制约着未来电网的规划。一个被广泛讨论的概念是化学和电力系统的综合规划。“未来能源网络的愿景”项目更进一步,提出了天然气和电力的共同基础设施。组合式传输装置(即所谓的互连器),由一个中空的导电体和内部气体流动组成,将提供一些好处,如更简单的总体规划,协同效应和新的机会,如在线存储化学能。气体流可用于电导体的冷却。提取的热量可以在终端重复使用。首先,建立了一个非等温可压缩气体流动和电力传输装置的通用模型,以研究互连器的工作特性和局限性。一个特殊的问题是传输的电能和化学能之间的耦合,因为气流也用于冷却电导体。物理和结构方面限制了化学与电力的可能操作范围。这项工作提出了用于确定这些限制及其对互连器操作的影响的方法。联合能量传输原理可以推广到液体化学能、区域供热和其他能量载体
本文章由计算机程序翻译,如有差异,请以英文原文为准。
A concept for dual gaseous and electric energy transmission
The trend towards decentralization of electricity production, the rising share of stochastic generators and more stringent consumer needs govern the planning of future networks. A widely discussed concept is that of integrated planning of chemical and electrical power systems. The "vision of future energy networks" project goes one step further and proposes a common infrastructure for both gas and electricity. A combined transmission device (a so-called interconnector), consisting of a hollow electrical conductor with internal gas flow, will offer several benefits such as simpler overall planning, synergetic effects and new opportunities like inline storage of chemical energy. The gas flow can be used for the cooling of the electrical conductor. The extracted heat can be reused at the terminals. In a first step, a generic model for a device with non-isothermal compressible gas flow and electricity transmission has been developed to investigate the operation characteristics and limitations of the interconnector. A particular issue is the coupling between the transmitted electrical and chemical power, as the gas flow also serves to cool down the electrical conductor. Physical and construction aspects limit the possible operation range of chemical versus electrical power. This work presents the methodology used to determine these limitations and their implications on the operation of the interconnector. The principle of combined energy transmission can be extended to liquid chemical energy, district heating and further energy carriers
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