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ADVANCED EXERGY ANALYSIS BASED ON THE PARAMETRIC STUDY OF THE REGASIFICATION OF LNG INTEGRATED INTO AN AIR SEPARATION PROCESS

机译:基于参数化研究的LNG集成到空气分离过程中的高级能效分析

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The growing demand for natural gas leads to an increasing LNG market. The amount of traded LNG has more than doubled during the last decade. This trend is intensified by the rising number of liquefaction plants (export terminals) and regasifica-tion plants (import terminals). At the end of the year 2013 there were 86 liquefaction plants in 17 exporting countries and 104 import terminals in 29 importing countries. Also the number of floating regasification plants is growing. It is expected that the LNG market will grow with 7 % per year until 2020. In comparison, the market for gaseous natural gas only will increase with approxematly 1.8% per year. The difference could be led back to the several advantages, when using LNG. Thus LNG enables the extraction of natural gas in offsite areas and leads to a flexible gas market. Especially with improving the efficiency of each part of the LNG chain - liquefaction, transportation, storage and re-gasification - and its fallen prices the LNG market will continue to grow. For the regasification of LNG different processes have been used, while mainly the vaporization via direct or indirect heating is applied. Due to their location at the coast of the importing country, seawater, air or the combustion gases coming from natural gas are used as thermal energy. A further possibility is the combination of regasification of LNG with generating electricity. Additionally, the regasification of LNG could be in- tegrated into chemical processes (oil refinery and petrochemical plants), where low temperature refrigeration is required. The authors have already reported a concept for the integration of the regasification of LNG into an air separation and liquefactions process, i.e. into a cryogenic processes. In previous publications, an evaluation of the conventional air separation unit in combination with the LNG regasification has been reported. It was emphasized that the integration of LNG leads to a lower power consumption for the entire system. This paper deals with an improved concept for integrating the regasification of LNG into an air separation process. Due to structural changes, comparing the first design and the new design, the system can be further improved from the thermodynamic point of view. The aim of this paper is to discover the potential for improvement by the parametric study. The results obtained from the sensitivity analysis (energetic and exergetic) are reported as well as the results obtained from the advanced exergetic analysis. Some options for new designs of this system are be developed.
机译:天然气需求的增长导致液化天然气市场的增长。在过去十年中,液化天然气的交易量增加了一倍以上。液化工厂(出口码头)和再气化工厂(进口码头)数量的增加加剧了这一趋势。到2013年底,在17个出口国中有86个液化厂,在29个进口国中有104个进口码头。浮动再气化工厂的数量也在增加。预计到2020年,液化天然气市场将以每年7%的速度增长。相比之下,仅气态天然气市场将以每年约1.8%的速度增长。使用LNG时,差异可以归结为几个优点。因此,LNG能够在异地提取天然气,并导致灵活的天然气市场。特别是随着液化天然气运输链各部分(液化,运输,储存和再气化)效率的提高以及价格下降,液化天然气市场将继续增长。对于液化天然气的再气化,已采用了不同的工艺,而主要采用的是通过直接或间接加热进行的气化。由于它们位于进口国海岸,因此海水,空气或天然气产生的燃烧气体被用作热能。进一步的可能性是液化天然气的再气化与发电的结合。另外,LNG的再气化可以集成到需要低温制冷的化学过程(炼油厂和石化厂)中。作者已经报道了将LNG的再气化结合到空气分离和液化过程中,即进入低温过程中的概念。在先前的出版物中,已经报道了对传统的空气分离单元与LNG再气化相结合的评估。需要强调的是,LNG的集成可降低整个系统的功耗。本文提出了一种改进的概念,用于将LNG的再气化集成到空气分离过程中。由于结构上的变化,将第一个设计与新设计进行比较,可以从热力学角度进一步改进该系统。本文的目的是通过参数研究发现改进的潜力。报告了从灵敏度分析(高能和高能)获得的结果,以及从高级高能分析获得的结果。为该系统的新设计开发了一些选项。

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