基于强化学习的集输管网运行综合控制系统

Qian Wu, Dandan Zhu, Yi Liu, A. Du, Dong Chen, Zhihui Ye
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引用次数: 2

摘要

在原油集输系统的输送过程中,往往采用水辅助传热来避免结蜡,管道温度和压力的控制往往采用人工控制。以提高控制效率,节约人工成本。在本文中,我们提出了一个基于dqn的算法。强化学习模型完成了管道内的温度和压力控制。同时,由于这两个参数具有较强的耦合性,影响全局控制,本文重点研究了阀门开度与加热炉和压力泵的联合优化。最后,为了验证系统的有效性,采用了仿真控制实验。试验结果表明,该系统控制效果良好,鲁棒性好。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Comprehensive Control System for Gathering Pipe Network Operation Based on Reinforcement Learning
In the transmission process of crude oil gathering system, water-assisted heat transfer is often used to avoid wax formation, and pipeline temperature and pressure control are often controlled manually. In order to improve control efficiency and save labor cost. In this paper, we propose a DQN-based algorithm. The intensive learning model completes the temperature and pressure control in the pipeline. At the same time, because these two parameters have strong coupling, which affects the global control, this paper focuses on the joint optimization of valve opening and heating furnace and pressure pump. Finally, in order to verify the effectiveness of the system, the simulation control experiment is adopted. The test results show that the system control effect is excellent and the robustness is good.
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