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Energy-efficient design and optimization of boil-off gas (BOG) re-liquefaction process for liquefied natural gas (LNG)-fuelled ship

机译:液化天然气(LNG)燃料船的蒸发气(BOG)再液化工艺的节能设计与优化

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Liquefied natural gas (LNG) fuelled shipping systems adopts the boil-off gas (BOG) re-liquefaction process to maintain the pressure of storage tank and to minimize methane loss. However, most of previous studies on on-board BOG re-liquefaction process were made for large-scale applications of LNG carriers. This paper focuses on small-scale BOG re-liquefaction process used for LNG fuelled ship. In order to improve energy efficiency of BOG re-liquefaction, process design and optimization study are carried out for the refrigeration process in LNG fuelled ship. The reverse Brayton cycle using nitrogen as a refrigerant fluid is selected and two different configurations without using cryogenic compressor are considered, namely, i) re-liquefaction of BOG feed stream without compression and ii) pre-heating of BOG feed to use compressor operating in ambient temperature. Thermodynamic analysis provides conceptual insights into the key operating variables on the performance of BOG re-liquefaction process, while energy efficient strategy for achieving minimum power consumptions can be systematically obtained through process optimization. Sensitivity analysis is also performed to understand how the variation of operating conditions affects on system performance of BOG re-liquefaction process under different design conditions and constraints. The case study also illustrates how process modeling and optimization framework proposed in this paper can be effectively utilized to improve energy efficiency in BOG re-liquefaction process. (C) 2018 Elsevier Ltd. All rights reserved.
机译:液化天然气(LNG)燃料运输系统采用蒸发气体(BOG)再液化工艺,以维持储罐压力并最大程度减少甲烷损失。但是,先前关于车载BOG再液化过程的大多数研究都是针对LNG船的大规模应用而进行的。本文重点研究了用于LNG燃料船的小规模BOG再液化工艺。为了提高BOG再液化的能效,对液化天然气船的制冷过程进行了工艺设计和优化研究。选择使用氮气作为制冷剂流体的反向布雷顿循环,并考虑了两种不使用低温压缩机的不同配置,即,i)BOG进料流的再液化而不进行压缩,以及ii)BOG进料的预热以使用在环境温度。热力学分析提供了关于BOG再液化过程性能的关键操作变量的概念性见解,而可以通过过程优化系统地获得实现最低功耗的节能策略。还进行了敏感性分析,以了解在不同的设计条件和约束条件下,运行条件​​的变化如何影响BOG再液化过程的系统性能。案例研究还说明了如何有效利用本文提出的过程建模和优化框架来提高BOG再液化过程的能源效率。 (C)2018 Elsevier Ltd.保留所有权利。

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