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Solar/biomass hybrid cycles with thermal storage and bottoming ORC: System integration and economic analysis

机译:具有热存储和底部ORC的太阳能/生物质混合循环:系统集成和经济分析

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摘要

This paper focuses on the thermodynamic modelling and thermo-economic assessment of a novel arrangement of a combined cycle composed of an externally fired gas turbine (EFGT) and a bottoming organic Rankine cycle (ORC). The main novelty is that the heat of the exhaust gas exiting from the gas turbine is recovered in a thermal energy storage from which heat is extracted to feed a bottoming ORC. The thermal storage can receive heat also from parabolic-trough concentrators (PTCs) with molten salts as heat-transfer fluid (HTF). The presence of the thermal storage between topping and bottoming cycle facilitates a flexible operation of the system, and in particular allows to compensate solar energy input fluctuations, increase capacity factor, increase the dispatchability of the renewable energy generated and potentially operate in load following mode. A thermal energy storage (TES) with two molten salt tanks (one cold and one hot) is chosen since it is able to operate in the temperature range useful to recover heat from the exhaust gas of the EFGT and supply heat to the ORC. The heat of the gas turbine exhaust gas that cannot be recovered in the TES can be delivered to thermal users for cogeneration. The selected bottoming ORC is a superheated recuperative cycle suitable to recover heat in the temperature range of the TES with good cycle efficiency. On the basis of the results of the thermodynamic simulations, upfront and operational costs assessments and subsidized energy framework (feed-in tariffs for renewable electricity), the global energy conversion efficiency and investment profitability are estimated.
机译:本文重点研究由外燃式燃气轮机(EFGT)和底部有机朗肯循环(ORC)组成的联合循环的新型布置的热力学建模和热经济评估。主要的新颖性在于,从燃气轮机排出的废气的热量在热能存储器中回收,从中提取热量以供给底部的ORC。蓄热器还可以从抛物槽式浓缩器(PTC)接收热量,并以熔融盐作为传热流体(HTF)。在顶部和底部循环之间存在蓄热器有利于系统的灵活操作,并且特别是允许补偿太阳能输入波动,增加容量因子,增加所产生的可再生能源的可分配性并可能以负荷跟随模式运行。选择具有两个熔盐罐(一个冷和一个热)的热能存储(TES),因为它能够在可用于从EFGT废气中回收热量并将热量提供给ORC的温度范围内运行。不能在TES中回收的燃气轮机废气的热量可以传递给热用户进行热电联产。所选的底部ORC为过热换热循环,适合以良好的循环效率回收TES温度范围内的热量。根据热力学模拟的结果,前期和运营成本评估以及补贴的能源框架(可再生电力的上网电价),可以估算全球能源转换效率和投资收益率。

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