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SYSTEM DESIGN OF A NOVEL COMBINED COOLING, HEAT, POWER, AND WATER MICROTURBINE COMBINED CYCLE

机译:新型冷却,热,电,水微涡轮联合循环系统设计

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The Power, Water Extraction, and Refrigeration (PoWER) engine has been investigated for several years as a distributed energy system, among other applications, for civilian or military use. Previous literature describing its modeling and experimental demonstration have indicated several benefits, especially when the underlying semi-closed cycle gas turbine is combined with a vapor absorption refrigeration system, the PoWER system described herein. The benefits include increased efficiency, high part-power efficiency, small lapse rate, compactness, less emissions, less air and exhaust flows (which decrease filtration and duct size) and condensation of fresh water.The current paper describes the preliminary design and modeling of a modified version of this system as applied to distributed energy, especially useful in regions which are prone to major grid interruptions due to hurricanes, under -capacity, or terrorism. In such cases, the distributed energy system should support most or all services within an isolated service island, including ice production, so that the influence of the power outage is limited in scope. The current paper describes the rather straightforward system modifications necessary for ice production. The primary focus of the paper is the use of this ice-making capacity to achieve significant load-leveling during the summer utility peak, hence reducing theelectrical capacity requirements for the grid as well as load-leveling strategies.
机译:动力,水提取和制冷(PoWER)发动机已经研究了多年,作为一种分布式能源系统,除其他应用外,还用于民用或军事用途。先前描述其建模和实验证明的文献已经表明了多种益处,特别是当下面的半封闭循环燃气轮机与蒸汽吸收式制冷系统(本文所述的PoWER系统)结合使用时。好处包括提高效率,提高部分动力效率,降低故障率,紧凑,减少排放,减少空气和排气流量(减小过滤和管道尺寸)以及冷凝淡水。 当前的文件描述了该系统的修改版本的初步设计和建模,该修改版本适用于分布式能源,尤其适用于由于飓风,运力不足或恐怖主义而导致电网严重中断的地区。在这种情况下,分布式能源系统应支持一个孤立的服务岛内的大部分或所有服务,包括制冰,因此停电的影响范围受到限制。当前的论文描述了制冰所必需的相当直接的系统修改。本文的主要重点是利用这种制冰能力在夏季公用事业高峰期实现显着的负荷均衡,从而减少 电网的电容量要求以及负载均衡策略。

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