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Energy analysis and multi-objective optimization of waste heat and cold energy recovery process in LNG-fueled vessels based on a triple organic Rankine cycle

机译:基于三重有机朗肯循环的LNG燃料血管中废热和冷能回收过程的能量分析和多目标优化

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摘要

Due to the high level of pollutant emissions from traditional marine diesel engines, Liquefied Natural Gas (LNG) as clean energy is becoming a better choice for main engines to replace the traditional fuels. Meanwhile, in order to improve the energy efficiency of the marine power system, the Organic Rankine Cycle (ORC) has been regarded as the most suitable solution to recover the waste heat for the power generation of vessels. In this paper, both the waste heat of the main engine and the cold energy of LNG have been fully considered, and a novel triple ORC process has been proposed for the waste heat and cold energy recovery of LNG-fueled vessels. It adopts the exhaust gas of the main engine and the cooling water from the engine jacket as heat sources, and uses the cold energy of LNG and the sea water as cold sources. Based on the 15 optional working fluid conditions, the heat source utilization rate, system exergy efficiency, net output power, and system cost are, respectively, combined as two objectives, and the multi-objective adaptive firefly algorithm is used to optimize the thermodynamic performance of the system. The optimization results of different heat and cold sources as well as the design parameters have been discussed. Finally, the system's exergy loss has been analyzed to make suggestions for further improvement. The results show that this novel ORC system can better meet the energy recovery requirements of LNG-fueled vessels, with higher net output power, lower cost, and greater energy recovery efficiency. The largest exergy loss of the system exists in the condensers of the stages 2 and 3, and the expanders in the various stages. Therefore, subsequent cooling energy recovery and the use of Stirling engines can be considered to further improve the system efficiency.
机译:由于传统海洋柴油发动机的高水平污染物排放,液化天然气(LNG)作为清洁能源正在成为更换传统燃料的主要发动机的更好选择。同时,为了提高海洋动力系统的能量效率,有机朗肯循环(ORC)被认为是最合适的解决方案,以回收血管发电的废热。在本文中,已经完全考虑了主发动机的废热和LNG的冷能,并提出了一种新的三重兽人工艺,用于液化液体的废热和冷能回收。它采用主发动机的废气和从发动机夹克的冷却水作为热源,并使用LNG和海水的冷能作为冷源。基于15个可选的工作流体条件,热源利用率,系统高效效率,净输出功率和系统成本分别组合为两个目标,并且使用多目标自适应萤火虫算法来优化热力学性能系统。已经讨论了不同热和冷源的优化结果以及设计参数。最后,分析了系统的高度损失,以提出进一步改进。结果表明,这种新的兽人系统可以更好地满足LNG燃料容器的能量回收要求,具有较高的净输出功率,更低的成本和更高的能量回收效率。系统的最大漏洞存在于阶段2和3的冷凝器中,以及各个阶段的扩展器。因此,可以认为随后的冷却能量回收和斯特林发动机的使用进一步提高了系统效率。

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