利用单一混合制冷剂循环中间冷却器余热的新型液体蒸汽喷射器进行天然气液化的多效蒸馏

Md Maruf Ahmed, Salim Sadman Bishal, M Monjurul Ehsan, Yasin Khan
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引用次数: 0

摘要

减少和再利用废热对提高工业过程的经济效益和能源效率至关重要。此外,应对气候变化在很大程度上依赖于回收原本会被浪费的热量。随着人口的增长,对清洁饮用水的需求也越来越大。单混合制冷剂(SMR)循环是天然气液化中最实用的制冷技术之一,它在多级压缩之间的中间冷却器中排除了大量的热能,这些热能可作为低温多效海水淡化厂的主要热源。本研究建议将天然气液化系统与液体蒸汽喷射器(LVE)和单一混合制冷剂(SMR)系统相结合,这两种系统都采用多效蒸馏与热蒸汽压缩(MED-TVC)。设计代码SMR-MED集成系统在Python中使用内部鲁棒算法开发。在这种情况下,MED-TVC系统可以利用单一混合制冷剂天然气液化设施的废热,这一事实凸显了其灵活性。进行了能量和火用分析,以确定所提出系统的可行性。设计代码已根据现有文献进行了验证。参数分析是通过改变三个独立的参数来完成的:即制冷剂质量流量(10kg/s至30 kg/s)、中冷器的水质量流量(10kg/s至40kg/s)和中冷器的进水温度(17℃至35℃),因为这些参数既影响LNG生产SMR周期,也影响MED-TVC系统的馏分油和卤水生产。结果表明:增加制冷剂流量可使冷却效果提高299.68%,LNG产量增加289.90%;然而,指数下降馏分74.22%,从而限制了最大制冷剂流量。提高水质量流量可使馏分产量提高676.07%,收率提高676.92%;相反,它减少了72.97%的卤水产量。相反,增加进水温度会降低馏分产生和整体系统性能。研究结果可用于改进现有系统性能和设计更具可持续性的余热回收系统。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

Multi-effect distillation with novel liquid vapor ejector utilizing the waste heat from intercoolers of a single mixed refrigerant cycle for natural gas liquefaction

Multi-effect distillation with novel liquid vapor ejector utilizing the waste heat from intercoolers of a single mixed refrigerant cycle for natural gas liquefaction
Reducing and reusing waste heat is crucial to increasing the economic benefits and energy efficiency of industrial processes. Furthermore, combating climate change relies heavily on recovering heat that would otherwise be squandered. With a growing population comes a greater need for clean drinking water. Single mixed refrigerant (SMR) cycle, one of the most practical refrigerating technologies for natural gas liquefaction, rejects a great deal of heat energy in the intercoolers between multistage compression that may be used as the primary heat source for a low-temperature multi-effect desalination plant. This research suggests combining a natural gas liquefaction system with a Liquid Vapor Ejector (LVE) and a Single Mixed Refrigerant (SMR) system, all of which use multi-effect distillation with thermal vapor compression (MED-TVC). The design code SMR-MED integrated system is developed using an in-house robust algorithm in Python. In this setting, the fact that the MED-TVC system can use waste heat from a single mixed refrigerant natural gas liquefaction facility highlights its flexibility. An energy and exergy analysis are performed to determine the feasibility of the proposed system. The design code has been validated against the existing literature. The parametric analysis has been done by changing three independent parameters: namely, refrigerant mass flow rate (10 kg/s to 30 kg/s), water mass flow rate at the intercooler (10kg/s to 40kg/s), and water inlet temperature at the intercooler (17 °C to 35 °C), as, these parameters affects both the LNG production SMR cycle as well as Distillate and Brine production in the MED-TVC system. The results suggest that increasing refrigerant flow increases the cooling effect by 299.68 %, thus producing 289.90 % more LNG; however, exponentially declines distillate by 74.22 %, thus limiting maximum refrigerant flow. Increasing the water mass flow rate improves the distillate production and Gained output ratio (GOR) by 676.07 % and 676.92 %, respectively; conversely, it reduces brine production by 72.97 %. In contrast, increasing water inlet temperature reduces distillate generation and overall system performance. The study results can be used to improve existing system performance and design more sustainable waste heat recovery systems.
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