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Spray-Cooling for Wind-Based Compressed Air Energy Storage

机译:喷雾冷却,用于风能压缩空气储能

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Energy systems can benefit from compact and efficient energy storage technologies. In particular, energy storage is well suited for off-shore wind turbines whose output energy variability is typically inconsistent with grid power demand. Furthermore, accommodating peak power generation can lead to over-sizing of electrical generator and transmission lines. It would be more efficient and economical if off-shore wind turbines could be sized for average power and could produce this power on a continuous basis. This would allow the traditional wind turbine generator and transmission lines can be replaced by a smaller, lower-cost, constant-speed generator and a transmission system sized for average power output. This study analyzes a compressor to build and maintain compressed air energy storage for a 35-MPa accumulator sized for a 5 MW off-shore wind turbine. The compressor employs a liquid piston for compression and water spray for heat transfer to achieve near isothermal behavior and efficiency. The overall compression is achieved in three stages with pressure ratios of 10:1, 7:1, and 5:1 under 1-Hz working frequency. The results indicate that droplet surface area plays a critical role in system performance and that high mass loading and small drops can increase overall system efficiency by as much as 50%, as compared to conventional air compressor systems.
机译:能源系统可以从紧凑高效的能源存储技术中受益。特别地,能量存储非常适合离岸风力涡轮机,其输出能量的可变性通常与电网电力需求不一致。此外,适应峰值发电会导致发电机和传输线的尺寸过大。如果可以将离岸风力涡轮机的大小确定为平均功率,并且可以连续产生这种功率,则将更加高效,经济。这将允许传统的风力涡轮发电机和输电线路可以被更小,成本更低的恒速发电机以及尺寸适合平均功率输出的传动系统所取代。这项研究分析了一种压缩机,该压缩机可为35 MPa蓄能器构建和维护压缩空气储能,蓄能器的大小适用于5 MW海上风力发电机。压缩机采用液体活塞进行压缩,并采用喷水进行热传递,以实现接近等温的性能和效率。在1 Hz的工作频率下,通过10:1、7:1和5:1的压力比分三个阶段实现总体压缩。结果表明,液滴表面积在系统性能中起着至关重要的作用,与传统的空气压缩机系统相比,高质量负载和小液滴可以使整个系统效率提高多达50%。

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