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OPTIMUM MEDIUM SCALE WIND-CAES CONFIGURATIONS FOR THE ELECTRIFICATION OF REMOTE COMMUNITIES

机译:远程社区电子化的最佳中型风-CAES配置

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摘要

Although renewable energy sources (RES) technologies are nowadays granted as established, back up power is still required in order to support the variable energy generation owed to e.g. the stochastic nature of wind speed. In this context, there are various energy storage technologies that may interact with the primary RES energy source and achieve 100% energy autonomy for the load consumption each time investigated, eliminating at the same time contribution of thermal power generation. Among the various energy storage solutions, grown interest is recently noted in the investigation of compressed air energy storage (CAES) systems. Acknowledging the fact that although CAES is considered as bulk energy storage, it may equally well be downscaled so as to serve small-medium size applications, the current research study investigates the solution of an integrated Wind-CAES solution used to serve remote communities. More precisely, an optimization methodology is developed on the basis of a techno-economic analysis under the restriction of 100% energy autonomy achieved. Furthermore, several areas of different wind potential quality are investigated, while on top of that two different system versions are studied; i.e. the conventional CAES cycle and the dual-mode CAES cycle, where the system may allow shift to the Brayton cycle when energy stores are not sufficient to cover energy demand. Results obtained indicate the feasibility of the proposed solution, while the importance of exploiting a high wind potential is reflected. Finally, the advantage of the dual-mode CAES solution over the conventional CAES cycle for areas of low quality wind potential is designated.
机译:尽管如今可再生能源(RES)技术已按既定标准获得批准,但仍需要备用电源,以支持由于例如可再生能源而产生的可变能源。风速的随机性。在这种情况下,有各种各样的储能技术可以与主要的RES能源互动,并在每次调查时实现100%的能源消耗,从而消除了火力发电的影响。在各种储能解决方案中,最近对压缩空气储能(CAES)系统的研究引起了越来越多的兴趣。承认尽管CAES被认为是大容量储能的事实,但它可能同样可以缩小规模以服务于中小型应用,当前的研究研究是对用于偏远社区的集成Wind-CAES解决方案的解决方案进行了研究。更准确地说,在实现100%能源自主性的限制下,基于技术经济分析开发了一种优化方法。此外,还研究了不同风能质量的几个区域,此外还研究了两个不同的系统版本。即常规CAES周期和双模CAES周期,其中当能量存储不足以满足能源需求时,系统可能允许切换到Brayton周期。获得的结果表明了所提出解决方案的可行性,同时反映了利用高风能的重要性。最后,指出了针对低质量风势区域的双模式CAES解决方案相对于常规CAES循环的优势。

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