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Micro-scale trigenerative compressed air energy storage system: Modeling and parametric optimization study

机译:微型三代压缩空气储能系统:建模和参数优化研究

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In this paper, a trigenerative compressed air energy storage system is considered giving priority to the electric energy production with the objective to apply it at a micro-scale, typically a few kW. A whole detailed thermodynamic model of the system is developed including the existing technological aspects and the relations between components. The study then focuses on investigating the mutual effects of the design parameters and their influences on the system performances, energy density and heat exchanger footprints via a parametric study. From this analysis, it is found that the temperature of the thermal energy storage, the number of compression stages and the effectiveness of heat exchangers should be selected as a trade-off between the system efficiencies, heat exchangers footprints and the required number of expansion stages. Meanwhile, the selection of the maximum storage pressure is a choice whether to increase the energy density or the system efficiencies. An optimal design guideline of the above key parameters is then provided. This guideline, the method and the procedure presented in this paper can be applied to the optimization of the trigenerative compressed air energy storage and could be extended for the adiabatic one with minor changes. Based on existing technologies and using an optimal set of parameters, the round trip electrical efficiency of our system remains low at 17%, while the comprehensive efficiency reaches 27.2%. The poor performances are mainly linked to the exergy losses in the throttling valve and the low values of the component efficiencies at a micro-scale. The most optimization potentials are also addressed.
机译:在本文中,考虑使用三代压缩空气储能系统,该系统优先考虑电能生产,目标是在微尺度(通常为几kW)下应用。开发了系统的完整详细的热力学模型,包括现有技术方面和组件之间的关系。然后,该研究集中于通过参数研究调查设计参数的相互影响及其对系统性能,能量密度和热交换器占地面积的影响。从该分析中发现,应选择热能存储的温度,压缩级数和热交换器的效率,以在系统效率,热交换器的占地面积和所需的膨胀级数之间进行权衡。同时,最大存储压力的选择是增加能量密度还是提高系统效率的选择。然后提供了上述关键参数的最佳设计指南。本文提出的指导方针,方法和程序可以应用于三代压缩空气储能的优化,并且可以扩展到绝热的变化很小的绝热储能系统。基于现有技术并使用最佳参数集,我们系统的往返电气效率仍保持在17%的较低水平,而综合效率达到27.2%。较差的性能主要与节流阀中的火用损失以及微观上的组件效率值低有关。还讨论了最大的优化潜力。

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