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Transient Power Optimization of an Organic Rankine Cycle Waste Heat Recovery System for Heavy-Duty Diesel Engine Applications

机译:重型柴油机应用中有机朗肯循环废热回收系统的瞬态功率优化

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This paper presents the transient power optimization of an organic Rankine cycle waste heat recovery (ORC-WHR) system operating on a heavy-duty diesel (HDD). The optimization process is carried on an experimentally validated, physics-based, high fidelity ORC-WHR model, which consists of parallel tail pipe and EGR evaporators, a high pressure working fluid pump, a turbine expander, etc. Three different ORC-WHR mixed vapor temperature (MVT) operational strategies are evaluated to optimize the ORC system net power: (i) constant MVT; (ii) constant superheat temperature; (iii) fuzzy logic superheat temperature based on waste power level. Transient engine conditions are considered in the optimization. Optimization results reveal that adaptation of the vapor temperature setpoint based on evaporation pressure strategy (ii) provides 1.1% mean net power (MNP) improvement relative to a fixed setpoint strategy (i). The highest net power is produced by setpoint strategy (iii), which exhibited a 2.1% improvement compared strategy (i), revealing importance of utilizing engine conditions during reference trajectory generation. These results serve as the benchmark for the ORC system net power optimal control.
机译:本文介绍了在重型柴油(HDD)上运行的有机朗肯循环废热回收(ORC-WHR)系统的瞬态功率优化。优化过程采用实验验证的基于物理的高保真兽人-HWR模型,由平行的尾管和EGR蒸发器,高压工作流体泵,涡轮膨胀机等。三种不同的ORC-WHR混合蒸汽温度(MVT)进行操作策略,以优化ORC系统净功率:(i)恒定MVT; (ii)恒温温度; (iii)基于废功率水平的模糊逻辑过热温度。在优化中考虑了瞬态发动机条件。优化结果表明,基于蒸发压力策略(II)的蒸汽温度设定点的适应提供了相对于固定设定点策略(I)的1.1%的平均净功率(MNP)改善。最高净功率由设定点策略(III)产生,其展示了2.1%的改进比较策略(I),揭示了在参考轨迹生成期间利用发动机条件的重要性。这些结果用作ORC系统净功率最佳控制的基准。

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