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Dynamic Model of a Multi-Evaporator Organic Rankine Cycle for Exhaust Heat Recovery in Automotive Applications

机译:汽车应用中余热回收的多蒸发器有机朗肯循环的动力学模型

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Abstract: This paper presents a dynamic model of an organic Rankine cycle (ORC) for exhaust heat recovery (EHR) in automotive applications. EHR converts the thermal energy of the exhaust gas into mechanical power. Dynamic components like evaporator, condenser, etc. are modeled based on physical conservation laws given as partial differential equations (PDE). The system involves two parallel evaporators coupled via an open t-piece which is handled numerically efficiently by introduction of algebraic constraints. An integral method improves the evaluation of the fluid properties which partly contain discontinuities. They can have negative effects on accuracy and simulation performance if evaluated inappropriately. The model is implemented by signal-based programming suitable for simulation in Matlab/Simulink. This enables convenient software-in-the-loop (SIL) engineering since many control unit producers provide rapid prototype programming via Matlab/Simulink. A simplified model is proposed for the increase of robustness and simulation performance or for application of controller design methods. Simulation shows both the entire ORC system compared measurements from a Daimler prototype truck, and comparison between complex and simplified model.
机译:摘要:本文提出了一种有机朗肯循环(ORC)用于汽车应用中的排热回收(EHR)的动力学模型。 EHR将废气的热能转换为机械能。诸如蒸发器,冷凝器等动态组件是根据作为偏微分方程(PDE)给出的物理守恒定律建模的。该系统包括两个平行的蒸发器,这些蒸发器通过一个开放的T型件相连,通过引入代数约束可以有效地进行数值处理。积分方法可以改善对部分包含不连续性的流体特性的评估。如果评估不当,它们可能会对准确性和仿真性能产生负面影响。该模型通过适用于Matlab / Simulink中仿真的基于信号的编程来实现。由于许多控制单元生产商可以通过Matlab / Simulink提供快速的原型编程,因此可以实现便捷的软件在环(SIL)工程。为提高鲁棒性和仿真性能或应用控制器设计方法,提出了一种简化模型。仿真显示,整个ORC系统都比较了戴姆勒原型卡车的测量结果,以及复杂模型和简化模型之间的比较。

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