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Assessing thermal energy storage technologies of concentrating solar plants for the direct coupling with chemical processes. The case of solar-driven biomass gasification

机译:评估集中式太阳能发电厂的热能存储技术,以与化学过程直接耦合。太阳能驱动生物质气化的案例

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Dynamic simulation, design improvements and control issues in solar power plants might compete with special considerations on energy storing techniques. In order to provide the stability in production of power or chemical commodities in spite of discontinuity in the source of energy, i.e., sun, overall concerns in the details of solar power plant, competition and comparison of common storing technologies should be taken into account to ensure the effectiveness and continuity of the supply. This research activity is aimed at extending the study from the power generation purpose to the solar-supplied chemical commodities production, highlighting the limitations of certain well-established thermal energy storage techniques when concentrating solar is directly coupled with chemical processes. The (intrinsically dynamic and closed-loop) simulation of solar power plants and direct thermal energy storage technologies is performed for the direct thermal energy storage technologies and, only for the case of thermocline, it is coupled with computational fluid-dynamic (CFD) studies for the proper assessment of molten salt and steam temperature trends. To investigate benefits/restrictions of the storage technologies, the solar steam generation is integrated with the gasification of biomasses for syngas production. Also, first-principles dynamic model for the biomass gasifier is provided.
机译:太阳能发电厂的动态仿真,设计改进和控制问题可能会与储能技术的特殊考虑相竞争。为了在能源(即太阳)不连续的情况下提供稳定的电力或化学商品生产,应考虑到太阳能发电厂细节,竞争和常用存储技术的比较方面的总体关注,确保供应的有效性和连续性。这项研究活动旨在将研究从发电目的扩展到由太阳能提供的化学商品的生产,强调当聚光太阳能与化学过程直接结合时,某些公认的热能存储技术的局限性。太阳能发电厂和直接热能存储技术的(本质上是动态的和闭环的)仿真是针对直接热能存储技术执行的,并且仅在温跃层的情况下,它与计算流体动力学(CFD)研究相结合用于正确评估熔融盐和蒸汽温度趋势。为了研究存储技术的好处/限制,将太阳蒸汽的产生与生物质的气化相结合以生产合成气。此外,提供了生物质气化炉的第一性原理动力学模型。

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