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Optimal energy management of an underwater compressed air energy storage station using pumping systems

机译:使用抽水系统的水下压缩空气储能站的最佳能源管理

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The paper is part of the development of a novel underwater isothermal Compressed Air Energy Storage (CAES) system. Compared to conventional CAES plant, the performances of this system only depend on the electrical energy required for a round-trip cycle; performances of each sub-system of the power conversion process takes part of the overall efficiency. Consequently, this work is focused on an optimal energy management of the electrical power conversion system driving the isothermal hydro-pneumatic mechanism enabling the air compression/expansion. After examining inherent characteristics of conversion components challenging the overall conversion efficiency, we propose an efficient platform layout based on the segmentation of the energy conversion multiplying power conversion systems with different power ranges. Then, we establish control laws required by the electrical multi-machines system in order to drive pumping systems closed to their best efficiency points. However, these laws subject the conversion platform to a transient and variable operating needing the design of robust controller structures. Finally, we develop a dynamic reversible modelling of the multi-physic conversion platform along with the control scheme. The layout is modelled on Matlab Simulink environment and the paper closes with simulation results. We evaluate the dynamic performances of the compressed air storage system in both storage and production mode. Moreover, the effectiveness of power segmentation for the grid integration of the proposed system is discussed.
机译:该论文是新型水下等温压缩空气储能(CAES)系统开发的一部分。与传统的CAES装置相比,该系统的性能仅取决于往返循环所需的电能。功率转换过程中每个子系统的性能都占整体效率的一部分。因此,这项工作集中在驱动等温液压气动机构的电力转换系统的最佳能量管理上,从而实现空气压缩/膨胀。在检查了挑战整体转换效率的转换组件的固有特性之后,我们基于具有不同功率范围的能量转换乘以功率转换系统的分段,提出了一种有效的平台布局。然后,我们建立电气多机系统所需的控制法则,以使泵送系统接近最佳效率点。然而,这些法律使转换平台经受瞬态和可变操作,需要设计鲁棒的控制器结构。最后,我们开发了多物理转换平台的动态可逆建模以及控制方案。布局是在Matlab Simulink环境下建模的,本文以仿真结果结束。我们评估压缩空气存储系统在存储和生产模式下的动态性能。此外,讨论了功率分割对于所提出系统的电网集成的有效性。

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