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Reprint of: Performance analysis of a CCGT power plant integrated to a LNG regasification process

机译:转载:整合到液化天然气再气化过程中的CCGT电厂的性能分析

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This paper examines the performance of a combined cycle gas turbine plant (CCGT) when integrated to the cold energy released during the regasification process of liquefied natural gas (LNG). A growing number of LNG import terminals supply regasified natural gas for power generation, with an adjacent CCGT plant providing an anchor market for the facility itself. Two integration alternatives with mutual energetic gains are proposed and simulated, and compared to a reference case without any use of the LNG cold potential. The first alternative consists on exchanging heat among LNG and the Brayton cycle air intake. The second alternative adds to the first one a novel recovery opportunity by exchanging heat with the Rankine cycle condenser. On both cases, heat from the CCGT is rejected to a lower temperature level than the one of the regular dead state. From the regasification side, the process is performed without any help of extra external energy. Both integration alternatives led to an electrical efficiency enhancement when comparing to the non-integrated cycle: 6.32% and 9.09%, respectively. The energy return on investment (EROI) of each alternative was also analyzed and gains of 12.92% and 18.57% are predicted by upon the simulation data. (C) 2015 Published by Elsevier B.V.
机译:本文考察了联合循环燃气轮机(CCGT)与液化天然气(LNG)的再气化过程中释放的冷能的综合性能。越来越多的LNG进口码头为发电提供再气化天然气,而相邻的CCGT工厂为该设施本身提供了主要市场。提出并模拟了两种具有互能增益的集成方案,并将其与没有使用LNG冷势的参考案例进行了比较。第一种选择是在液化天然气和布雷顿循环进气之间进行热交换。第二种选择是通过与兰金循环冷凝器进行热交换,为第一种选择增加了新的回收机会。在这两种情况下,来自CCGT的热量都被排放到比常规死态之一更低的温度水平。从再气化方面看,该过程无需任何额外的外部能量即可完成。与非集成周期相比,这两种集成方案均可以提高电效率:分别为6.32%和9.09%。还分析了每种替代方案的能源投资回报率(EROI),并根据模拟数据预测了12.92%和18.57%的收益。 (C)2015由Elsevier B.V.发布

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