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Constrained optimal design of a reversible solid oxide cell-based multiple load renewable microgrid

机译:基于可逆固体氧化物细胞的多重负荷可再生微电网的约束优化设计

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Electrical energy storage systems are indispensable elements in a renewable power generation plant, since sources such as solar and wind are by nature intermittent and therefore not always available when necessary. Reversible solid oxide cells (rSOCs) can be fruitfully integrated within renewable microgrids, thus providing an effective solution to the mismatch between energy demand and production from renewable sources. The ob-jective of this work is the development of a modeling tool enabling both optimal sizing and proper year-through energy management of an rSOC-based renewable microgrid, supplying electricity and hydrogen to a residential complex and a passenger car fleet consisting of both electric and fuel cell vehicles. This innovative multiple load energy system entails developing suitable modeling tools to properly account for the randomness of both renewable energy production and load demand, the latter being treated via historical data and Monte Carlo-based procedures. To this aim, both hydrogen and thermal storage systems are involved in the plant design, whereas their charge sustaining management, here adopted to guarantee self-sufficiency features as required by robust and resilient distributed systems, are addressed through suited constraints. The resulting constrained optimization tool yields both design data and control guidelines, which can serve as a basis for subsequent development of low-level control strategies, as well as the refined design of grid-connected rSOC-based microgrids. A technoeconomic assessment shows that the payback period is reasonable, ranging between 6 and 10 years depending on the rSOC cost scenario.
机译:电能存储系统是可再生发电厂中的不可或缺的元素,因为太阳能和风等来源是自然间歇性的,因此在必要时并不总是可用。可逆转的固体氧化物细胞(RSOC)可以在可再生的微电网中效果果实地集成在可再生的微电网中,从而为来自可再生来源的能量需求和生产之间的不匹配提供了有效的解决方案。这项工作的ob-jective是开发建模工具,使基于RSOC的可再生微电网的最佳尺寸和适当的年度能源管理,将电力和氢气供应到住宅区和由电动的乘客车队组成和燃料电池车。这种创新的多重负荷能源系统需要开发合适的建模工具,以适当地考虑可再生能源生产和负载需求的随机性,后者通过历史数据和基于蒙特卡罗的程序进行处理。为此目的,氢气和热储存系统都参与了工厂设计,而他们的电费维持管理,这里采用了通过适用的约束来保证鲁棒和弹性分布式系统所需的自给自足的特征,通过适用于约束来解决。由此产生的受限优化工具产生了设计数据和控制指南,可以作为后续发展低级控制策略的基础,以及基于网格连接的基于RSOC的微电网的精致设计。技术经济评估表明,投资回收期是合理的,范围为6至10年,具体取决于RSOC成本方案。

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