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A Bio-Inspired Multi-Agent System Framework for Real-Time Load Management in All-Electric Ship Power Systems

机译:全电动船舶动力系统中实时负载管理的生物启发多代理系统框架

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摘要

All-electric ship power systems have limited generation capacity and finite rotating inertia compared with large power systems. Moreover, all-electric ship power systems include large portions of nonlinear loads and dynamic loads relative to the total power capacity, which may significantly reduce the stability margin. Pulse loads and other high-energy weapon loads in the system draw a large amount of power intermittently, which may cause significant frequency and voltage oscillations in the system. Thus, an effective real-time load management technique is needed to dynamically balance the load and generation to operate the system normally.Multi-agent systems, inspired by biological phenomena, aim to cooperatively achieve system objectives that are difficult to reach by a single agent or centralized controller. Since power systems include various electrical components with different dynamical systems, conventional homogeneous multi-agent system cooperative controllers have difficulties solving the real-time load management problem with heterogeneous agents. In this dissertation, a novel heterogeneous multi-agent system cooperative control methodology is presented based on artificial potential functions and reduced-order agent models to cooperatively achieve real-time load management for all-electric ship power systems. The technique integrates high-order system dynamics and various kinds of operational constraints into the multi-agent system, which improves the accuracy of the cooperative controller. The multi-agent system includes a MVAC multiagent system and a DC zone multi-agent, which are coordinated by an AC-DC communication agent.The developed multi-agent system framework and the notional all-electric ship power system model were simulated in PSCAD software. Case studies and performance analysis of the MVAC multi-agent system and the DC zone multi-agent system were performed. The simulation results indicated that propulsion loads and pulse loads can be successfully coordinated to reduce the impact of pulse loads on the power quality of all-electric ship power systems. Further, the switch status or power set-point of loads in DC zones can be optimally determined to dynamically balance the generation and load while satisfying the operational constraints of the system and considering load priorities. The method has great potential to be extended to other isolated power systems, such as microgrids.
机译:与大型电力系统相比,全电力船舶电力系统的发电能力有限且旋转惯量有限。而且,相对于总功率容量,全电船动力系统包括很大一部分非线性负载和动态负载,这可能会大大降低稳定性裕度。系统中的脉冲负载和其他高能武器负载会间歇性地消耗大量功率,这可能会导致系统中明显的频率和电压振荡。因此,需要一种有效的实时负载管理技术来动态平衡负载和发电量以正常运行系统。受生物现象启发的多主体系统旨在以协作方式实现单个主体难以达到的系统目标或集中控制器。由于电力系统包括具有不同动力系统的各种电气组件,因此常规的同类多智能体系统协作控制器很难解决异构智能体的实时负载管理问题。本文提出了一种基于人工势能和降阶Agent模型的异构多Agent系统协同控制方法,以实现全电力船舶电力系统的实时负荷管理。该技术将高阶系统动力学和各种操作约束集成到多智能体系统中,从而提高了协作控制器的精度。该多智能体系统包括一个MVAC多智能体系统和一个DC区域多智能体,由AC-DC通信智能体协同工作。在PSCAD中模拟了开发的多智能体系统框架和概念上的全电船舶电力系统模型软件。对MVAC多智能体系统和DC区域多智能体系统进行了案例研究和性能分析。仿真结果表明,推进载荷和脉冲载荷可以成功地协调,以减少脉冲载荷对全电力船舶电力系统的电能质量的影响。此外,可以最佳地确定DC区域中负载的开关状态或功率设定点,以在满足系统操作约束并考虑负载优先级的同时动态平衡发电和负载。该方法具有很大的潜力,可以扩展到其他隔离的电力系统,例如微电网。

著录项

  • 作者

    Feng Xianyong;

  • 作者单位
  • 年度 2012
  • 总页数
  • 原文格式 PDF
  • 正文语种 en_US
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