Design of Distributed Fractional Order PID Type Dynamic Matrix Controller for Large-Scale Process Systems

As a typical representative of distributed model predictive control, distributed dynamic matrix control (DDMC) is able to satisfy the basic control requirements for large-scale systems. However, the constraints and disturbances in actual industrial process usually lead to the slow set-point target t...

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Main Authors: Yiming Teng, Haisheng Li, Feng Wu
Format: Article
Language:English
Published: IEEE 2020-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/9208774/
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author Yiming Teng
Haisheng Li
Feng Wu
author_facet Yiming Teng
Haisheng Li
Feng Wu
author_sort Yiming Teng
collection DOAJ
description As a typical representative of distributed model predictive control, distributed dynamic matrix control (DDMC) is able to satisfy the basic control requirements for large-scale systems. However, the constraints and disturbances in actual industrial process usually lead to the slow set-point target tracking, large overshoot and weak anti-interference ability of the system. Therefore, the relevant requirements may not be met for some complex industrial processes. The existing distributed PID type dynamic matrix control (PID-DDMC) method can improve the control performance, but it maybe not accurate enough in some cases. Based on this background, this article introduces fractional order PID (FOPID) into distributed dynamic matrix control, and proposes a distributed fractional order PID type dynamic matrix control (FOPID-DDMC) algorithm. To compare with the conventional PID control, it expands the control and parameter setting range of the controller, and makes the control effect of the controller more accurate. Furthermore, the coupling effect among subsystems is dispelled by adopting the Nash optimal theory, and information interaction between the subsystems through network communication is realized, thereby, completing the optimization of the whole large-scale system. Finally, through a numerical simulation example and a level-temperature control process, the feasibility of the proposed algorithm is demonstrated by comparing with the traditional DDMC and PID-DDMC.
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spelling doaj.art-ffa12a84b4fd491196985d5e86cf85542022-12-21T17:14:27ZengIEEEIEEE Access2169-35362020-01-01817975417977110.1109/ACCESS.2020.30275979208774Design of Distributed Fractional Order PID Type Dynamic Matrix Controller for Large-Scale Process SystemsYiming Teng0Haisheng Li1Feng Wu2https://orcid.org/0000-0001-5288-6374Belt and Road Information Research Institute, Hangzhou Dianzi University, Hangzhou, ChinaBelt and Road Information Research Institute, Hangzhou Dianzi University, Hangzhou, ChinaBelt and Road Information Research Institute, Hangzhou Dianzi University, Hangzhou, ChinaAs a typical representative of distributed model predictive control, distributed dynamic matrix control (DDMC) is able to satisfy the basic control requirements for large-scale systems. However, the constraints and disturbances in actual industrial process usually lead to the slow set-point target tracking, large overshoot and weak anti-interference ability of the system. Therefore, the relevant requirements may not be met for some complex industrial processes. The existing distributed PID type dynamic matrix control (PID-DDMC) method can improve the control performance, but it maybe not accurate enough in some cases. Based on this background, this article introduces fractional order PID (FOPID) into distributed dynamic matrix control, and proposes a distributed fractional order PID type dynamic matrix control (FOPID-DDMC) algorithm. To compare with the conventional PID control, it expands the control and parameter setting range of the controller, and makes the control effect of the controller more accurate. Furthermore, the coupling effect among subsystems is dispelled by adopting the Nash optimal theory, and information interaction between the subsystems through network communication is realized, thereby, completing the optimization of the whole large-scale system. Finally, through a numerical simulation example and a level-temperature control process, the feasibility of the proposed algorithm is demonstrated by comparing with the traditional DDMC and PID-DDMC.https://ieeexplore.ieee.org/document/9208774/Distributed dynamic matrix controlfractional order PIDNash optimallarge-scale process systems
spellingShingle Yiming Teng
Haisheng Li
Feng Wu
Design of Distributed Fractional Order PID Type Dynamic Matrix Controller for Large-Scale Process Systems
IEEE Access
Distributed dynamic matrix control
fractional order PID
Nash optimal
large-scale process systems
title Design of Distributed Fractional Order PID Type Dynamic Matrix Controller for Large-Scale Process Systems
title_full Design of Distributed Fractional Order PID Type Dynamic Matrix Controller for Large-Scale Process Systems
title_fullStr Design of Distributed Fractional Order PID Type Dynamic Matrix Controller for Large-Scale Process Systems
title_full_unstemmed Design of Distributed Fractional Order PID Type Dynamic Matrix Controller for Large-Scale Process Systems
title_short Design of Distributed Fractional Order PID Type Dynamic Matrix Controller for Large-Scale Process Systems
title_sort design of distributed fractional order pid type dynamic matrix controller for large scale process systems
topic Distributed dynamic matrix control
fractional order PID
Nash optimal
large-scale process systems
url https://ieeexplore.ieee.org/document/9208774/
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AT haishengli designofdistributedfractionalorderpidtypedynamicmatrixcontrollerforlargescaleprocesssystems
AT fengwu designofdistributedfractionalorderpidtypedynamicmatrixcontrollerforlargescaleprocesssystems