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Decentralized Optimization Algorithms for Variable Speed Pumps Operation Based on Local Interaction Game

机译:基于局部相互作用博弈的变速泵运行分散优化算法

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摘要

A fully distributed optimal control strategy for the parallel variable speed pumps in heating, ventilation, and air-conditioning (HVAC) systems is proposed. Compared with the traditional centralized method, the efficient control and coordination are scattered to every updated smart pump without the need for a monitoring host. Similar to the structure, mechanism, and characteristics of biological communities, a smart pump can communicate with adjacent nodes and operate collaboratively to complete pumps group operation with the least total power consumption under load demand and system constraints. And a decentralized optimization method that is decentralized estimation of distribution algorithm (DEDA) under local interaction games framework has been transplanted to the proposed structure to optimize the pumps working in parallel mode. Besides, convergence property of the two novel mechanisms is analyzed theoretically. Finally, simulation studies have been conducted based on the models of a physical pumps system, and the performance of the proposed algorithm is compared with centralized algorithms in terms of both effectiveness and stability. The results provide support for the validity of the proposed algorithms and control structure.
机译:提出了供暖,通风和空调(HVAC)系统中的并联变速泵的完全分布式最优控制策略。与传统的集中式方法相比,高效的控制和协调分散在每个更新的智能泵上,而无需监视主机。与生物群落的结构,机制和特征相似,智能泵可以与相邻节点通信并协作运行,以在负载需求和系统约束下以最小的总功耗完成泵组的运行。在局部交互博弈框架下,将分布式优化方法(即分布式算法分布式估计(DEDA))移植到所提出的结构中,以优化以并行模式工作的泵。此外,从理论上分析了两种新颖机制的收敛性。最后,基于物理泵系统的模型进行了仿真研究,从有效性和稳定性两方面将所提算法的性能与集中式算法进行了比较。结果为所提出的算法和控制结构的有效性提供了支持。

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  • 来源
    《Journal of control science and engineering》 |2018年第2期|5468398.1-5468398.12|共12页
  • 作者单位

    College of Defense Engineering, Army Engineering University of PLA, Nanjing, Jiangsu 210001, China;

    College of Defense Engineering, Army Engineering University of PLA, Nanjing, Jiangsu 210001, China;

    Building Energy Research Center of Tsinghua University, Beijing 100084, China;

    Building Energy Research Center of Tsinghua University, Beijing 100084, China;

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