Liu Peng, Shu Gequn, Tian Hua, Wang Xuan
State Key Laboratory of Engines, Tianjin University, 92 Weijin Road, Nankai District, Tianjin 300072, China.
Entropy (Basel). 2018 Feb 21;20(2):137. doi: 10.3390/e20020137.
The Organic Rankine Cycle (ORC) has been proved a promising technique to exploit waste heat from Internal Combustion Engines (ICEs). Waste heat recovery systems have usually been designed based on engine rated working conditions, while engines often operate under part load conditions. Hence, it is quite important to analyze the off-design performance of ORC systems under different engine loads. This paper presents an off-design Medium Cycle/Organic Rankine Cycle (MC/ORC) system model by interconnecting the component models, which allows the prediction of system off-design behavior. The sliding pressure control method is applied to balance the variation of system parameters and evaporating pressure is chosen as the operational variable. The effect of operational variable and engine load on system performance is analyzed from the aspects of energy and exergy. The results show that with the drop of engine load, the MC/ORC system can always effectively recover waste heat, whereas the maximum net power output, thermal efficiency and exergy efficiency decrease linearly. Considering the contributions of components to total exergy destruction, the proportions of the gas-oil exchanger and turbine increase, while the proportions of the evaporator and condenser decrease with the drop of engine load.
有机朗肯循环(ORC)已被证明是一种利用内燃机(ICE)废热的有前景的技术。废热回收系统通常是基于发动机额定工况设计的,而发动机经常在部分负荷工况下运行。因此,分析ORC系统在不同发动机负荷下的非设计工况性能非常重要。本文通过将部件模型相互连接,提出了一种非设计工况的中循环/有机朗肯循环(MC/ORC)系统模型,该模型能够预测系统的非设计工况行为。应用滑压控制方法来平衡系统参数的变化,并选择蒸发压力作为运行变量。从能量和㶲的角度分析了运行变量和发动机负荷对系统性能的影响。结果表明,随着发动机负荷的下降,MC/ORC系统总能有效地回收废热,而最大净功率输出、热效率和㶲效率则呈线性下降。考虑各部件对总㶲损失的贡献,随着发动机负荷的下降,气-油换热器和涡轮的占比增加,而蒸发器和冷凝器的占比减小。