首页> 外文会议>ASME turbo expo: turbine technical conference and exposition >WORKING FLUID AND PARAMETRIC OPTIMIZATION OF A TWO-STAGE ORC UTILIZING LNG COLD ENERGY AND LOW GRADE HEAT OF DIFFERENT TEMPERATURES
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WORKING FLUID AND PARAMETRIC OPTIMIZATION OF A TWO-STAGE ORC UTILIZING LNG COLD ENERGY AND LOW GRADE HEAT OF DIFFERENT TEMPERATURES

机译:利用不同温度的LNG冷能和低级热的两阶段Orc的工作流体和参数优化

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Natural gas is considered as a green fuel due to its low environmental impact. LNG contains a large amount of cold exergy and must be regasified before further utilization. ORC (Organic Rankine Cycle) has been proven to be a promising solution for both low grade heat utilization and LNG cold exergy recovery. Due to the great temperature difference between the heat source and LNG, the efficiency of one-stage ORC is relatively small. Hence, some researchers move forward to a two-stage Rankine cycle. Working fluid plays a quite important role in the cycle performance. Working fluid selection of a two-stage ORC is much more challenging than that of a single-stage ORC. In this paper, a two-stage ORC is studied. Heat source temperatures of 100,150 and 200°C are investigated. 20 substances are selected as potential candidates for both the high and low Rankine cycles. The evaporating, condensing and turbine inlet temperatures of both Rankine cycles are optimized by PSO (Particle Swarm Optimization). The results show that the best combination for heat source temperature of 100°C is R161/R218 with the maximum exergy efficiency of 35.27%. The best combination for 150 °C is R161/RC318 with the maximum efficiency of 37.84% and ammonia/ammonia with the maximum efficiency of 39.15% for 200 °C. Fluids with intermediate critical temperature, lower triple point temperature and lower normal boiling temperature are good candidates.
机译:天然气由于对环境的影响小,因此被视为绿色燃料。液化天然气含有大量的冷本能,必须进一步气化才能进一步利用。 ORC(有机朗肯循环)已被证明是低品位热利用和LNG冷能回收的有前途的解决方案。由于热源和液化天然气之间的温差很大,因此一级ORC的效率相对较低。因此,一些研究人员进入了朗肯循环的两个阶段。工作液在循环性能中起着非常重要的作用。两级ORC的工作流体选择比单级ORC更具挑战性。本文研究了两阶段的ORC。研究了100,150和200°C的热源温度。高兰金循环和低兰金循环都选择了20种物质作为潜在候选物质。两个兰金循环的蒸发,冷凝和涡轮入口温度都通过PSO(微粒群优化)进行了优化。结果表明,热源温度为100°C的最佳组合为R161 / R218,最大火用效率为35.27%。对于150°C的最佳组合是R161 / RC318,在200°C下的最大效率为37.84%,而氨/氨的最大效率为39.15%。具有中等临界温度,较低的三点温度和较低的正常沸腾温度的流体是很好的选择。

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