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Improving design and operation at LNG regasification terminals through a corrected storage tank model

机译:通过校正的储罐模型改善LNG再置化终端的设计和操作

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摘要

The simulation of liquefied natural gas (LNG) storage tanks is often based on several problematic assumptions, for instance, estimation of boil-off gas (BOG) generation using boil-off rate, vapor-liquid equilibrium in the tank, static liquid level, the use of only lateral area for heat loss calculations, and etcetera. Some of these assumptions are built into selected commercial simulators, creating further challenges in simulating the behavior of LNG tanks. The present study highlights these challenges in the context of a commonly used process simulator, Aspen HYSYS, and provides analytical and intuitive solutions to those problems. The resultant model is validated against an established first-principle model and then exploited for finding improved LNG regasification terminal design and operation strategies. Tank aspect ratio (AR) was studied in relation to plant capacity, recirculation rate, and recirculation line length. An aspect ratio of 1 consistently results in minimum BOG generation, in contrast to the value of 0.5 frequently cited in the literature. During the planned/unplanned shutdown of re gasification terminal, higher liquid level in the tank decreases evaporation and thus BOG generation. Minimum recirculation rate that prevents 2-phase flow is found to minimize BOG generation and compressor duty.
机译:液化天然气(LNG)储罐的模拟通常基于几个有问题的假设,例如,使用蒸汽速率,罐中的蒸气液平衡,静电液位估计蒸汽气体(沼泽)生成估计,仅使用横向区域进行热量损耗计算,等等。其中一些假设是内置的商业模拟器,在模拟LNG坦克的行为方面产生了进一步的挑战。目前的研究在常用的过程模拟器,Aspen Hysys的背景下突出了这些挑战,并为这些问题提供了分析和直观的解决方案。结果模型针对建立的第一原理模型进行了验证,然后利用用于查找改进的LNG再扫描终端设计和操作策略。坦克纵横比(AR)与植物容量,再循环率和再循环线长度研究。纵横比为1始终如一地产生最小沼泽生成,与文献中经常引用的0.5的值相反。在综合气化终端的计划/无计划关闭期间,罐中的液位较高降低蒸发,从而降低沼泽。发现防止2相流量的最小再循环率最小化沼泽生成和压缩机义务。

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