Research on MLD Modeling and Predictive Control of Magnetically Coupled Resonant Bidirectional WPT System Article Swipe
YOU?
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· 2024
· Open Access
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· DOI: https://doi.org/10.3390/electronics13071290
The recent studies on magnetically coupled resonant bidirectional wireless power transfer (MCR-BWPT) systems disregard the challenges posed by nonlinearity, discrete switching action, and hybrid properties within the system. This research focuses on the D-LCL resonant compensation topology MCR-BWPT system. The switch tube’s switching state dictates the division of various working modes and the determination of the switching conditions between them. The coupling relationship between the continuous dynamic characteristics of the system and discrete events and the constrained conditions of the system are derived. The Hybrid System Description Language (HYSDEL) is used to build the Mixed Logic Dynamic (MLD) model of the system. The MLD model is employed as the prediction model, and the hybrid model predictive controller of the MCR-BWPT system is constructed according to the quadratic performance index. Finally, to verify the accuracy of the MLD model and the feasibility of the control strategy, the simulation model of the MLD model is established in MATLAB/Simulink. The study’s findings show that, in terms of response time at system startup and power fluctuation suppression, the approach put forward in this research performs better than both the conventional bilateral dual-phase-shift control strategy and the PQ-based bilateral power control strategy. The MCR-BWPT system can operate more steadily now that PQ’s bidirectional power control technique is in place. The system’s forward and reverse transmission efficiency is increased by 0.29% and 0.32% compared to the conventional bilateral dual-phase-shift control approach; the increases are 0.28% and 0.09%, each compared to the bilateral power control strategy based on PQ.
Related Topics
- Type
- article
- Language
- en
- Landing Page
- https://doi.org/10.3390/electronics13071290
- https://www.mdpi.com/2079-9292/13/7/1290/pdf?version=1711787649
- OA Status
- gold
- Cited By
- 2
- References
- 13
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- OpenAlex ID
- https://openalex.org/W4393352980
Raw OpenAlex JSON
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https://openalex.org/W4393352980Canonical identifier for this work in OpenAlex
- DOI
-
https://doi.org/10.3390/electronics13071290Digital Object Identifier
- Title
-
Research on MLD Modeling and Predictive Control of Magnetically Coupled Resonant Bidirectional WPT SystemWork title
- Type
-
articleOpenAlex work type
- Language
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enPrimary language
- Publication year
-
2024Year of publication
- Publication date
-
2024-03-30Full publication date if available
- Authors
-
Xin Li, Tianyang Zhao, Jiqiang XuList of authors in order
- Landing page
-
https://doi.org/10.3390/electronics13071290Publisher landing page
- PDF URL
-
https://www.mdpi.com/2079-9292/13/7/1290/pdf?version=1711787649Direct link to full text PDF
- Open access
-
YesWhether a free full text is available
- OA status
-
goldOpen access status per OpenAlex
- OA URL
-
https://www.mdpi.com/2079-9292/13/7/1290/pdf?version=1711787649Direct OA link when available
- Concepts
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Model predictive control, Control (management), Physics, Control theory (sociology), Electronic engineering, Computer science, Engineering, Artificial intelligenceTop concepts (fields/topics) attached by OpenAlex
- Cited by
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2Total citation count in OpenAlex
- Citations by year (recent)
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2025: 2Per-year citation counts (last 5 years)
- References (count)
-
13Number of works referenced by this work
- Related works (count)
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10Other works algorithmically related by OpenAlex
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| abstract_inverted_index.increases | 236 |
| abstract_inverted_index.quadratic | 126 |
| abstract_inverted_index.strategy, | 144 |
| abstract_inverted_index.strategy. | 196 |
| abstract_inverted_index.study’s | 157 |
| abstract_inverted_index.switching | 20, 42, 56 |
| abstract_inverted_index.technique | 210 |
| abstract_inverted_index.(MCR-BWPT) | 11 |
| abstract_inverted_index.challenges | 15 |
| abstract_inverted_index.conditions | 57, 77 |
| abstract_inverted_index.continuous | 65 |
| abstract_inverted_index.controller | 116 |
| abstract_inverted_index.efficiency | 220 |
| abstract_inverted_index.prediction | 109 |
| abstract_inverted_index.predictive | 115 |
| abstract_inverted_index.properties | 24 |
| abstract_inverted_index.simulation | 146 |
| abstract_inverted_index.system’s | 215 |
| abstract_inverted_index.Description | 86 |
| abstract_inverted_index.constrained | 76 |
| abstract_inverted_index.constructed | 122 |
| abstract_inverted_index.established | 153 |
| abstract_inverted_index.feasibility | 140 |
| abstract_inverted_index.fluctuation | 171 |
| abstract_inverted_index.performance | 127 |
| abstract_inverted_index.compensation | 35 |
| abstract_inverted_index.conventional | 185, 230 |
| abstract_inverted_index.magnetically | 4 |
| abstract_inverted_index.relationship | 62 |
| abstract_inverted_index.suppression, | 172 |
| abstract_inverted_index.transmission | 219 |
| abstract_inverted_index.bidirectional | 7, 207 |
| abstract_inverted_index.determination | 53 |
| abstract_inverted_index.nonlinearity, | 18 |
| abstract_inverted_index.characteristics | 67 |
| abstract_inverted_index.MATLAB/Simulink. | 155 |
| abstract_inverted_index.dual-phase-shift | 187, 232 |
| cited_by_percentile_year.max | 97 |
| cited_by_percentile_year.min | 95 |
| countries_distinct_count | 1 |
| institutions_distinct_count | 3 |
| citation_normalized_percentile.value | 0.65290946 |
| citation_normalized_percentile.is_in_top_1_percent | False |
| citation_normalized_percentile.is_in_top_10_percent | False |