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Energy-Optimal Control of an Automotive Air Conditioning System for Ancillary Load Reduction

机译:汽车空调系统的能量优化控制,以减少辅助负载

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The air conditioning (A/C) system is currently the largest ancillary load in passenger cars, with a significant impact on fuel economy and CO emissions. Considerable energy savings could be attained by simply adopting supervisory energy management algorithms that operate the A/C system to reduce power consumption of the compressor, while maintaining the cabin comfort requirements. This paper proposes a model-based approach to the design of a supervisory energy management strategy for automotive A/C systems. Starting from an energy-based model of the A/C system that captures the complex dynamics of the refrigerant in the heat exchangers and the compressor power consumption, a constrained multiobjective optimal control problem is formulated to jointly account for fuel consumption, cabin comfort, and system durability. The tradeoff between fuel economy, performance, and durability is analyzed by performing a Pareto analysis of a family of solutions generated using dynamic programming. A forward-looking optimal compressor clutch policy is then obtained by developing an original formulation of Pontryagin’s minimum principle for hybrid dynamical systems. The simulation results demonstrate that the proposed control strategy allows for fuel economy improvement while retaining system performance and driver comfort.
机译:当前,空调(A / C)系统是乘用车中最大的辅助负载,对燃油经济性和CO排放产生重大影响。只需采用监督性能源管理算法即可节省大量能源,该算法可运行A / C系统以减少压缩机的功耗,同时又能保持机舱舒适性。本文提出了一种基于模型的方法来设计汽车空调系统的监督能源管理策略。从A / C系统的基于能量的模型开始,该模型捕获了换热器中制冷剂的复杂动力学和压缩机的能耗,提出了一个受约束的多目标最优控制问题,以共同考虑燃料消耗,机舱舒适性和系统耐用性。通过对使用动态编程生成的一系列解决方案进行帕累托分析,可以分析燃油经济性,性能和耐用性之间的折衷。然后,通过开发庞特里亚金混合动力系统最小原理的原始公式,获得具有前瞻性的最佳压缩机离合器策略。仿真结果表明,提出的控制策略可以在保持系统性能和驾驶员舒适度的同时提高燃油经济性。

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