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Exergetic Analysis, Optimization and Comparison of LNG Cold Exergy Recovery Systems for Transportation

机译:LNG运输系统冷能回收系统的能量分析,优化与比较

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LNG (Liquefied Natural Gas) shares in the global energy market is steadily increasing. One possible application of LNG is as a fuel for transportation. Stricter air pollution regulations and emission controls have made the natural gas a promising alternative to liquid petroleum fuels, especially in the case of heavy transport. However, in most LNG-fueled vehicles, the physical exergy of LNG is destroyed in the regasification process. This paper investigates possible LNG exergy recovery systems for transportation. The analyses focus on “cold energy” recovery systems as the enthalpy of LNG, which may be used as cooling power in air conditioning or refrigeration. Moreover, four exergy recovery systems that use LNG as a low temperature heat sink to produce electric power are analyzed. This includes single-stage and two-stage direct expansion systems, an ORC (Organic Rankine Cycle) system, and a combined system (ORC + direct expansion). The optimization of the above-mentioned LNG power cycles and exergy analyses are also discussed, with the identification of exergy loss in all components. The analyzed systems achieved exergetic efficiencies in the range of 20 % to 36 % , which corresponds to a net work in the range of 214 to 380 kJ/kg L N G .
机译:LNG(液化天然气)在全球能源市场中的份额正在稳步增长。 LNG的一种可能应用是用作运输燃料。更严格的空气污染法规和排放控制已使天然气成为液态石油燃料的有前途的替代品,特别是在重型运输的情况下。但是,在大多数以LNG为燃料的车辆中,LNG的物理能级在再气化过程中被破坏。本文研究了用于运输的可能的LNG火用回收系统。分析着眼于作为LNG焓的“冷能”回收系统,该系统可用作空调或制冷系统的冷却功率。此外,分析了四个使用LNG作为低温散热器产生电能的火用回收系统。这包括单阶段和两阶段直接扩展系统,ORC(有机朗肯循环)系统和组合系统(ORC +直接扩展)。还讨论了上述LNG功率循环的优化和火用分析,并确定了所有组件的火用损失。所分析的系统在20%至36%的范围内实现了高能效,这相当于214至380 kJ / kg L N G的净功。

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