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Small-scale Experimental Testing of a Novel Marine Floating Platform with Integrated Hydro-pneumatic Energy Storage

机译:具有集成水流能量储存的新型海洋浮动平台的小规模实验测试

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Co-locating energy storage within the floating platform of offshore renewable energy systems is an effective way of reducing the cost and environmental footprint of marine energy storage devices. However, the development of suitable, non-hazardous technologies, and the influence of the marine environment on their efficiency remains an open problem. Research at the University of Malta has culminated in the Floating Liquid-piston Accumulator using Seawater under Compression (FLASC) concept, a solution involving hydro-pneumatic energy storage tailored for offshore renewables. A small-scale prototype was deployed at a sheltered marine location in the Maltese Islands, in the central Mediterranean Sea. The aim of the experimental campaign was to measure the performance of the energy storage system, and to quantify the effects of different system parameters along with the surrounding meteorological conditions. Results from selected charging-discharging cycles are presented, these include different scheduling schemes and pressure ranges. Overall, results indicate that the experimental system consistently demonstrated a high thermal efficiency ( 93%) across hundreds of charging cycles. Operating pressure range and charging schedule play a limited role on the hydro-pneumatic process, whereas seasonal temperature changes play a more significant role, in that such changes can slightly alter the effective storage capacity of the system. Results from this experimental work provide a practical proof-of-concept for hydro-pneumatic marine energy storage, and can enable key conclusions to be drawn providing a basis to numerous ongoing developments in fluid-based energy storage systems for offshore implementation.
机译:在海上可再生能源系统的浮动平台内共同定位储能是降低海洋能量存储装置成本和环境足迹的有效途径。然而,发展合适的,非危险技术,以及海洋环境对其效率的影响仍然是一个公开的问题。马耳他大学的研究已经在压缩(Flasc)概念下使用海水浮动液体活塞蓄能器,该解决方案涉及用于海上可再生能源的水上气动能量储存。在马耳他海岛的庇护海洋地区部署了一个小型原型,位于地中海海洋中。实验活动的目的是测量能量储存系统的性能,并量化不同系统参数以及周围气象条件的影响。提出了选择的充电排出循环的结果,其中包括不同的调度方案和压力范围。总体而言,结果表明,实验系统始终如一地证明了数百个充电循环的高热效率(> 93%)。工作压力范围和充电时间表在水气动过程中起着有限的作用,而季节性温度变化发挥更大的作用,在这种变化可以略微改变系统的有效存储容量。该实验工作的结果为水力气动海洋储能提供了实用的概念证明,可以为普遍实施流体的能量存储系统提供较大的持续发展,为较多的持续发展提供概念。

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