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Bottoming organic Rankine cycle configurations to increase Internal Combustion Engines power output from cooling water waste heat recovery

机译:底部有机朗肯循环配置,以增加内燃机发动机冷却水余热回收的功率输出

摘要

This work is focused on waste heat recovery of jacket cooling water from Internal Combustion Engines (ICEs). Cooling water heat does not always find use due to its low temperature, typically around 90 °C, and usually is rejected to the ambient despite its high thermal power. An efficient way to take benefit from the ICE cooling water waste heat can be to increase the power output through suitable bottoming Organic Rankine Cycles (ORCs). Thereby, this work simulates six configurations using ten non flammable working fluids and evaluates their performances in efficiency, safety, cost and environmental terms. Results show that the Double Regenerative ORC using SES36 gets the maximum net efficiency of 7.15%, incrementing the ICE electrical efficiency up to 5.3%, although requires duplicating the number of main components and high turbine size. A more rigorous analysis, based on the system feasibility, shows that small improvements in the basic cycle provide similar gains compared to the most complex schemes proposed. So, the single Regenerative ORC using R236fa and the Reheat Regenerative ORC using R134a seem suitable cycles which provide a net efficiency of 6.55%, incrementing the ICE electrical efficiency up to 4.9%.
机译:这项工作的重点是从内燃机(ICE)回收夹套冷却水的废热。冷却水的热量通常较低,通常在90°C左右,因此并不总是有用的,尽管它具有很高的热能,但通常会被排放到周围环境中。受益于ICE冷却水余热的一种有效方法是通过适当的底部有机朗肯循环(ORC)来增加功率输出。因此,这项工作使用十种不易燃的工作流体模拟了六种配置,并评估了它们在效率,安全性,成本和环境方面的性能。结果表明,使用SES36的双蓄热式ORC可获得7.15%的最大净效率,将ICE的电效率提高到5.3%,尽管需要增加主要部件的数量和增加涡轮尺寸。基于系统可行性的更严格的分析表明,与提出的最复杂的方案相比,基本周期的微小改进可提供相似的收益。因此,使用R236fa的单个蓄热式ORC和使用R134a的再热蓄热式ORC似乎是合适的循环,可提供6.55%的净效率,从而将ICE电效率提高至4.9%。

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