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Design and Multi-Mode Operational Analysis of a Hybrid Wind Energy Storage System Integrated with CVT and Electromechanical Flywheel

Authors
Liu, TaoLyu, Sung-KiQin, ZhenOh, DongseokWu, Yu-Ting
Issue Date
Jan-2026
Publisher
MDPI AG
Keywords
wind power generation; Continuously Variable Transmission; electromechanical flywheel; power smoothing; Low Voltage Ride-Through
Citation
Machines, v.14, no.1
Indexed
SCIE
SCOPUS
Journal Title
Machines
Volume
14
Number
1
URI
https://scholarworks.gnu.ac.kr/handle/sw.gnu/82362
DOI
10.3390/machines14010081
ISSN
2075-1702
2075-1702
Abstract
To address the lack of inertia in full-power converter wind turbines and the inability of existing mechanical speed regulation technologies to achieve power smoothing without converters, this paper proposes a novel hybrid wind energy storage system integrating a Continuously Variable Transmission (CVT) and an electromechanical flywheel. This system establishes a cascaded topology featuring "CVT-based source-side speed regulation and electromechanical flywheel-based terminal power stabilization." By utilizing the CVT for speed decoupling and introducing the flywheel via a planetary differential branch, the system retains physical inertia by eliminating large-capacity converters and overcomes the bottleneck of traditional mechanical transmissions, which struggle to balance constant frequency with stable power output. Simulation results demonstrate that the proposed system reduces the active power fluctuation range by 47.60% compared to the raw wind power capture. Moreover, the required capacity of the auxiliary motor is only about 15% of the rated power, reducing the reliance on power electronic converters by approximately 85% compared to full-power converter systems. Furthermore, during a grid voltage dip of 0.6 p.u., the system restricts rotor speed fluctuations to within 0.5%, significantly enhancing Low Voltage Ride-Through (LVRT) capability.
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Lyu, Sung Ki
대학원 (기계항공우주공학부)
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