Speed Synchronization Control for Integrated Automotive Motor-Transmission Powertrains Over CAN Through a Co-Design Methodology

This paper deals with the speed synchronization controller design for networked integrated motor-transmission (IMT) powertrains via controller area network (CAN). It is well known that, in current implementations, CAN has been widely used in the control system design of automotive powertrains. Howev...

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Main Authors: Wanke Cao, Yingshuang Wu, Yuhua Chang, Zhiyin Liu, Cheng Lin, Qiang Song, Antoni Szumanowski
Format: Article
Language:English
Published: IEEE 2018-01-01
Series:IEEE Access
Subjects:
Online Access:https://ieeexplore.ieee.org/document/8305455/
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spelling doaj-7111c2f8e11c41a7acb4d56de3e27a052021-03-29T21:00:37ZengIEEEIEEE Access2169-35362018-01-016141061411710.1109/ACCESS.2018.28109418305455Speed Synchronization Control for Integrated Automotive Motor-Transmission Powertrains Over CAN Through a Co-Design MethodologyWanke Cao0https://orcid.org/0000-0003-0406-1727Yingshuang Wu1Yuhua Chang2Zhiyin Liu3Cheng Lin4Qiang Song5Antoni Szumanowski6National Engineering Laboratory for Electric Vehicles and Collaborative Innovation Center of Electric Vehicles in Beijing, School of Mechanical Engineering, Beijing Institute of Technology, Beijing, ChinaNational Engineering Laboratory for Electric Vehicles and Collaborative Innovation Center of Electric Vehicles in Beijing, School of Mechanical Engineering, Beijing Institute of Technology, Beijing, ChinaDepartment of Multisource Propulsion system, Faculty of Automotive and Construction Machinery Engineering, Warsaw University of Technology, Warsaw, PolandDepartment of Multisource Propulsion system, Faculty of Automotive and Construction Machinery Engineering, Warsaw University of Technology, Warsaw, PolandNational Engineering Laboratory for Electric Vehicles and Collaborative Innovation Center of Electric Vehicles in Beijing, School of Mechanical Engineering, Beijing Institute of Technology, Beijing, ChinaNational Engineering Laboratory for Electric Vehicles and Collaborative Innovation Center of Electric Vehicles in Beijing, School of Mechanical Engineering, Beijing Institute of Technology, Beijing, ChinaDepartment of Multisource Propulsion system, Faculty of Automotive and Construction Machinery Engineering, Warsaw University of Technology, Warsaw, PolandThis paper deals with the speed synchronization controller design for networked integrated motor-transmission (IMT) powertrains via controller area network (CAN). It is well known that, in current implementations, CAN has been widely used in the control system design of automotive powertrains. However, on the other hand, the application of CAN would not only lead to network-induced delays but also bring about protocol constrains, e.g., data package capability and utilization ratio limitation, which would deteriorate the system and make the controller design a challenging problem. This paper is to provide a co-design methodology that can cope with all these problems and ensure satisfactory control effect for the speed synchronization control of IMT powertrain systems. First, a networked IMT powertrain system using CAN as underlying network is presented and the dynamic model for the speed synchronization control is derived. Second, the network-induced delay model is introduced and improved considering data packet capability and utilization ratio limitation. The control-orient discrete-time model is also derived based on the improved delay model. Third, a co-design methodology using sliding mode controller and offline priority scheduling based on Lyapunov stability criterion is proposed. The results of simulations and tests show the effectiveness of the proposed co-design methodology.https://ieeexplore.ieee.org/document/8305455/Integrated motor-transmission (IMT)speed synchronization controlsliding mode controlnetwork-induced delayprotocol constrainco-design of scheduling and control
collection DOAJ
language English
format Article
sources DOAJ
author Wanke Cao
Yingshuang Wu
Yuhua Chang
Zhiyin Liu
Cheng Lin
Qiang Song
Antoni Szumanowski
spellingShingle Wanke Cao
Yingshuang Wu
Yuhua Chang
Zhiyin Liu
Cheng Lin
Qiang Song
Antoni Szumanowski
Speed Synchronization Control for Integrated Automotive Motor-Transmission Powertrains Over CAN Through a Co-Design Methodology
IEEE Access
Integrated motor-transmission (IMT)
speed synchronization control
sliding mode control
network-induced delay
protocol constrain
co-design of scheduling and control
author_facet Wanke Cao
Yingshuang Wu
Yuhua Chang
Zhiyin Liu
Cheng Lin
Qiang Song
Antoni Szumanowski
author_sort Wanke Cao
title Speed Synchronization Control for Integrated Automotive Motor-Transmission Powertrains Over CAN Through a Co-Design Methodology
title_short Speed Synchronization Control for Integrated Automotive Motor-Transmission Powertrains Over CAN Through a Co-Design Methodology
title_full Speed Synchronization Control for Integrated Automotive Motor-Transmission Powertrains Over CAN Through a Co-Design Methodology
title_fullStr Speed Synchronization Control for Integrated Automotive Motor-Transmission Powertrains Over CAN Through a Co-Design Methodology
title_full_unstemmed Speed Synchronization Control for Integrated Automotive Motor-Transmission Powertrains Over CAN Through a Co-Design Methodology
title_sort speed synchronization control for integrated automotive motor-transmission powertrains over can through a co-design methodology
publisher IEEE
series IEEE Access
issn 2169-3536
publishDate 2018-01-01
description This paper deals with the speed synchronization controller design for networked integrated motor-transmission (IMT) powertrains via controller area network (CAN). It is well known that, in current implementations, CAN has been widely used in the control system design of automotive powertrains. However, on the other hand, the application of CAN would not only lead to network-induced delays but also bring about protocol constrains, e.g., data package capability and utilization ratio limitation, which would deteriorate the system and make the controller design a challenging problem. This paper is to provide a co-design methodology that can cope with all these problems and ensure satisfactory control effect for the speed synchronization control of IMT powertrain systems. First, a networked IMT powertrain system using CAN as underlying network is presented and the dynamic model for the speed synchronization control is derived. Second, the network-induced delay model is introduced and improved considering data packet capability and utilization ratio limitation. The control-orient discrete-time model is also derived based on the improved delay model. Third, a co-design methodology using sliding mode controller and offline priority scheduling based on Lyapunov stability criterion is proposed. The results of simulations and tests show the effectiveness of the proposed co-design methodology.
topic Integrated motor-transmission (IMT)
speed synchronization control
sliding mode control
network-induced delay
protocol constrain
co-design of scheduling and control
url https://ieeexplore.ieee.org/document/8305455/
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