LAPSE:2023.4047
Published Article

LAPSE:2023.4047
Supervisory Control for Wireless Networked Power Converters in Residential Applications
February 22, 2023
Abstract
This paper presents a methodology to design and utilize a supervisory controller for networked power converters in residential applications. Wireless networks have been interfaced to multiple power factor correction (PFC) converters which are proposed to support reactive power. Unregulated reactive power support from PFC converters could cause reactive power deficiency and instability. Therefore, a supervisory controller is necessary to govern the operation of PFC converters. WiFi and WirelessHART networks have been used to implement the supervisory controller. Different nodes of the power network are connected by wireless communication links to the supervisory controller. Asynchronous communication links latency and uncertain states affect the control and response of the PFC converters. To overcome these issues, the supervisory controller design method has been proposed based on the system identification and the Ziegler-Nichols rule. The proposed supervisory controller has been validated by using a hardware-in-the-loop (HIL) test bed. The HIL testbed consisted of an OP4510 simulator, a server computer, Texas Instrument-Digital Signal Controllers (TI-DSCs), WiFi and WirelessHART modules. Experimental results show that the proposed supervisory controller can help to support and govern reactive power flow in a residential power network. The proposed method of controller design will be useful for different small-scale power and wireless network integration.
This paper presents a methodology to design and utilize a supervisory controller for networked power converters in residential applications. Wireless networks have been interfaced to multiple power factor correction (PFC) converters which are proposed to support reactive power. Unregulated reactive power support from PFC converters could cause reactive power deficiency and instability. Therefore, a supervisory controller is necessary to govern the operation of PFC converters. WiFi and WirelessHART networks have been used to implement the supervisory controller. Different nodes of the power network are connected by wireless communication links to the supervisory controller. Asynchronous communication links latency and uncertain states affect the control and response of the PFC converters. To overcome these issues, the supervisory controller design method has been proposed based on the system identification and the Ziegler-Nichols rule. The proposed supervisory controller has been validated by using a hardware-in-the-loop (HIL) test bed. The HIL testbed consisted of an OP4510 simulator, a server computer, Texas Instrument-Digital Signal Controllers (TI-DSCs), WiFi and WirelessHART modules. Experimental results show that the proposed supervisory controller can help to support and govern reactive power flow in a residential power network. The proposed method of controller design will be useful for different small-scale power and wireless network integration.
Record ID
Keywords
HIL Testbed, networked power converters, PFC converters, reactive power resources, supervisory controller
Subject
Suggested Citation
Islam SMR, Park SY, Zheng S, Han S, Park SM. Supervisory Control for Wireless Networked Power Converters in Residential Applications. (2023). LAPSE:2023.4047
Author Affiliations
Islam SMR: Electrical and Computer Engineering Department, University of Connecticut, Storrs, CT 06269, USA [ORCID]
Park SY: Electrical and Computer Engineering Department, University of Connecticut, Storrs, CT 06269, USA
Zheng S: Computer Science Engineering Department, University of Connecticut, Storrs, CT 06269, USA
Han S: Computer Science Engineering Department, University of Connecticut, Storrs, CT 06269, USA
Park SM: Electrical and Electronic Engineering Department, Hongik University, Sejong-si 30016, Korea [ORCID]
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Park SY: Electrical and Computer Engineering Department, University of Connecticut, Storrs, CT 06269, USA
Zheng S: Computer Science Engineering Department, University of Connecticut, Storrs, CT 06269, USA
Han S: Computer Science Engineering Department, University of Connecticut, Storrs, CT 06269, USA
Park SM: Electrical and Electronic Engineering Department, Hongik University, Sejong-si 30016, Korea [ORCID]
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Journal Name
Energies
Volume
12
Issue
10
Article Number
E1911
Year
2019
Publication Date
2019-05-18
ISSN
1996-1073
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Original Submission
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PII: en12101911, Publication Type: Journal Article
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LAPSE:2023.4047
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https://doi.org/10.3390/en12101911
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Feb 22, 2023
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