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Distributed control architecture for real-time model predictive control for system-level harmonic mitigation in power systems

机译:电力系统系统级谐波缓解实时模型预测控制的分布式控制架构

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It can be challenging to design and implement Model Predictive Control (MPC) schemes in systems with fast dynamics. As MPCs often introduce high computational loads, it can be hard to assure real-time properties required by the dynamic system. An understanding of the system's behavior, to exploit system properties that can benefit real-time implementation is imperative. Moreover, MPC implementations on embedded local devices rarely allows flexibility to changes in model and control philosophy, due to increased complexity and computational loads. A change in control philosophy (run-time) can be quite relevant in power systems that can change from an integrated to a segregated state. This paper proposes a distributed control hierarchy with a real-time MPC implementation, designed as a higher-level control unit, to feed a lower-level control device with references. The higher-level control unit's objective in this paper is to generate the control reference of an Active Power Filter for system-level harmonic mitigation. In particular, a novel system architecture, which incorporates the higher-level MPC control and handles distribution of control action to low-level controllers, as well as receiving measurements used by the MPC, is proposed to obtain the application's real-time properties and control flexibility. The higher-level MPC control, which is designed as a distributed control node, can be swapped with another controller (or control philosophy) if the control objective or the dynamic system changes. A standard optimization framework and standard software and hardware technology is used, and the MPC is designed on the basis of repetitive and distributed control, which allows the use of relatively low control update rate. A simulator architecture is implemented with the aim of mimicking a Hardware-In-Loop (HIL) simulator test to evaluate the application's real-time properties, as well as the application's resource usage. The results demonstrates that the implementation of the harmonic mitigation application exhibits the real-time requirements of the application with acceptable resource usage. (C) 2019 ISA. Published by Elsevier Ltd. All rights reserved.
机译:在具有快速动态的系统中设计和实现模型预测控制(MPC)方案可能具有挑战性。由于MPC经常引入高计算负荷,因此很难确保动态系统所需的实时性能。了解系统的行为,以利用可以使用实时实现的系统属性是必要的。此外,由于复杂性和计算负载增加,嵌入式本地设备上的MPC实现很少允许灵活的模型和控制哲学改变。控制理念(运行时)的变化在能够从集成到隔离状态改变的电力系统中可以非常相关。本文提出了一种具有实时MPC实现的分布式控制层次结构,设计为更高级别控制单元,用于使用参考提供较低级控制设备。本文的更高级别控制单元的目的是为系统级谐波缓解产生有源电力滤波器的控制参考。特别地,一种新的系统架构,它包含更高级别的MPC控制并将控制动作分布的分布与低电平控制器一起处理,以及接收MPC使用的测量值,以获得应用程序的实时性能和控制灵活性。如果控制目标或动态系统发生变化,则设计为分布式控制节点的更高级别MPC控件,可与另一个控制器(或控制哲学)交换。使用标准优化框架和标准软件和硬件技术,MPC在重复和分布式控制的基础上设计,允许使用相对较低的控制更新速率。模拟器架构实现了模拟器架构,目的是模拟循环(HIL)模拟器测试,以评估应用程序的实时属性,以及应用程序的资源使用情况。结果表明,谐波缓解申请的实施呈现了具有可接受的资源使用情况的应用程序的实时要求。 (c)2019 ISA。 elsevier有限公司出版。保留所有权利。

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