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Role of thermal technologies for enhancing flexibility in multi-energy systems through sector coupling: technical suitability and expected developments

机译:通过扇区耦合来提高多能量系统灵活性的热技术的作用:技术适用性和预期的发展

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摘要

Thermal power generation technologies are widely used for electricity production, for heat provision in district or process heating systems, and for combined heat and power generation. In most cases, thermal technologies are heat driven and electricity is produced as a by-product, thus resulting in a non-flexible behaviour of the electricity production. Modern power grids are characterised by an increasing share of renewable leading to a need for enhanced and flexible ways of controlling the power flow. To provide services to the power grid, thermal generating technologies may be used in a more efficient way, coupled to gas and heat storage systems or aggregated in virtual power plants. Several technical factors determine which technologies are suitable for flexibility provision, including power ranges, start up times and ramp rates. In this work, carried out in the frame of the MAGNITUDE H2020 project, the technical characteristics of thermal sector-coupling technologies were analysed using data from the seven real-life project's case studies. The technical suitability was determined based on the product requirements in selected European power markets for the provision of identified system services. Expected future developments and trends were highlighted well.
机译:热发电技术广泛用于电力生产,用于区或工艺加热系统中的热量提供,以及用于混合热量和发电。在大多数情况下,热技术是热驱动的,电力被生产为副产物,从而导致电力产生的非柔性行为。现代电网的特点是,可再生能力的份额增加,导致需要增强和灵活的控制电力流量。为了向电网提供服务,可以以更有效的方式使用热产生技术,耦合到气体和储热系统或在虚拟发电厂中聚集。有几个技术因素确定哪些技术适用于灵活性,包括电源范围,启动时间和斜率。在这项工作中,在幅度H2020项目的框架中进行,使用来自七个真实项目的案例研究的数据分析了热扇形耦合技术的技术特征。根据所选欧洲电力市场的产品要求,确定技术适用性,以提供确定的系统服务。预计未来的发展和趋势突出了很好。

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