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System analysis of waste heat applications with LNG regasification

机译:LNG再气化废热应用系统分析

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摘要

The combination of the continuously growing demand of energy in the world, the depletion of oil and its sharp price increase, as well as the urgent need for cleaner and more efficient fuels have boosted the global trade of liquefied natural gas (LNG). Nowadays, there is an increasing interest on the design philosophy of the LNG receiving terminals, due to the fact that the existing technologies either use seawater as heating source or burn part of the fuel for regasifying LNG, thus destroying the cryogenic energy of LNG and causing air pollution or harm to marine life. This investigation addresses the task of developing novel systems able to simultaneously regasify LNG and generate electric power in the most efficient and environmentally friendly way.    Existing and proposed technologies for integrated LNG regasification and power generation were identified and simple, efficient, safe and compact alternatives were selected for further analysis. A baseline scenario for integrated LNG regasification and power generation was established and simulated, consisting of a cascaded Brayton configuration with a typical small gas turbine as topping cycle and a simple closed Brayton cycle as bottoming cycle. Various novel configurations were created, modeled and compared to the baseline scenario in terms of LNG regasification rate, efficiency and power output. The novel configurations include closed Rankine and Brayton cycles for the bottoming cycle, systems for power augmentation in the gas turbine and combinations of options. A study case with a simple and compact design was selected, preliminarily designed and analyzed according to characteristics and costs provided by suppliers. The performance, costs and design challenges of the study case were then compared to the baseline case. The results show that the study case causes lower investment costs and a smaller footprint of the plant, at the same time offering a simple design solution though with substantially lower efficiencies.
机译:世界能源需求的不断增长,石油的枯竭及其价格的急剧上涨以及对更清洁,更高效的燃料的迫切需求的结合,促进了液化天然气(LNG)的全球贸易。如今,由于现有技术使用海水作为加热源或燃烧部分燃料以使LNG再气化,因此对LNG接收终端的设计理念越来越感兴趣,这破坏了LNG的低温能并导致空气污染或对海洋生物的危害。这项调查解决了开发能够同时对LNG进行再气化并以最有效,最环保的方式发电的新颖系统的任务。确定了现有和拟议中的用于液化天然气再气化和发电的综合技术,并选择了简单,高效,安全和紧凑的替代方案进行进一步分析。建立并模拟了集成LNG再气化和发电的基准情景,包括以典型的小型燃气轮机为顶循环和简单的封闭式布雷顿循环为底循环的级联布雷顿构型。在液化天然气再气化率,效率和功率输出方面,创建了各种新颖的配置,对它们进行建模并与基准方案进行了比较。新颖的配置包括用于底部循环的封闭式兰金循环和布雷顿循环,燃气轮机中的功率增强系统以及选项的组合。选择了一个简单紧凑的研究案例,根据供应商提供的特性和成本进行了初步设计和分析。然后将研究案例的性能,成本和设计挑战与基准案例进行比较。结果表明,该研究案例可降低投资成本,减小工厂占地面积,同时提供简单的设计解决方案,但效率大大降低。

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