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Estimation and Predictive Control of a Parallel Evaporator Diesel Engine Waste Heat Recovery System

机译:并联蒸发器柴油机余热回收系统的估算和预测控制

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This paper proposes a real-time capable augmented control scheme for a parallel evaporator organic Rankine cycle (ORC) waste heat recovery system for a heavy-duty diesel engine, which ensures efficient and safe ORC system operation. Assuming a time constant separation between the thermal and pressure dynamics, a nonlinear model predictive control (NMPC) is designed to regulate the mixed working fluid (WF) outlet temperature and the differential temperature between the two parallel evaporator outlets. Meanwhile, the evaporator pressure is regulated by an external PID control. The NMPC is designed using a reduced order, moving boundary control model of the heat exchanger system. In the NMPC formulation, state feedback is constructed from the estimated state via an unscented Kalman filter based on temperature measurements of the exhaust gas and WF at the evaporator outlet. The performance of the proposed control scheme is demonstrated in simulation over an experimentally validated, high fidelity, and physics-based ORC plant model during a transient constant speed and variable load engine drive cycle. The performance of the proposed control scheme (NMPC plus PID) is further validated via comparison with a conventional, multiple-loop PID controlling both the mixed evaporator outlet WF temperature, and the evaporator pressure. The simulation results demonstrate that the proposed control scheme outperforms a multiple-loop PID control in terms of both safety and total recovered thermal energy by up to 12% and 9%, respectively.
机译:本文提出了一种适用于重型柴油机的并联蒸发器有机朗肯循环(ORC)余热回收系统的实时增强控制方案,可确保ORC系统高效,安全地运行。假设热力学和压力动力学之间存在时间常数分隔,则设计了非线性模型预测控制(NMPC)来调节混合工作流体(WF)出口温度和两个平行蒸发器出口之间的温差。同时,蒸发器压力通过外部PID控制进行调节。使用换热器系统的降阶移动边界控制模型设计NMPC。在NMPC公式中,基于在蒸发器出口处的废气和WF的温度测量值,通过无味的卡尔曼滤波器从估计状态构造状态反馈。拟议的控制方案的性能在瞬态恒速和可变负载发动机驱动循环过程中的经过实验验证的,高保真度和基于物理的ORC工厂模型的仿真中得到了证明。通过与控制混合蒸发器出口WF温度和蒸发器压力的常规多回路PID进行比较,进一步验证了所提出的控制方案(NMPC加PID)的性能。仿真结果表明,所提出的控制方案在安全性和总回收热能方面均优于多回路PID控制,分别高达12%和9%。

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