4.6 Article

Enhancing Power Generation Stability in Oscillating-Water-Column Wave Energy Converters through Deep-Learning-Based Time Delay Compensation

Journal

PROCESSES
Volume 11, Issue 6, Pages -

Publisher

MDPI
DOI: 10.3390/pr11061787

Keywords

artificial intelligence; deep learning algorithm; maximum power point tracking; rated power control; oscillating-water-column wave energy converter; optimal control; time delay; output power performance; renewable energy

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This study proposes a rated power controller that compensates for system time delays using a deep learning algorithm, addressing the challenges posed by the irregular input energy characteristics of oscillating-water-column wave energy converters (OWC-WECs) and enabling continuous power generation. The performance of the proposed controller is evaluated by analyzing the algorithm's error rate, demonstrating a significant increase in annual power generation by compensating for the unavoidable time delay of OWC-WECs under various wave conditions.
Oscillating-water-column wave energy converters (OWC-WECs) are gaining attention for their high energy potential and environmental friendliness. However, their irregular input energy characteristics pose challenges to achieving stable power generation, particularly due to high peak power compared to average power. This study focuses on stable rating control to enable continuous power generation in the presence of irregular wave energy. It is difficult to precisely configure the existing rated power controllers due to physical time delays; this impacts system stability and utilization. To address this, we propose a rated power controller that compensates for system time delays using a deep learning algorithm. By predicting the valve control angle in advance and analyzing the input data for angle estimation, we successfully compensate for the physical time delay. The performance of the proposed rated power controller, incorporating the deep learning algorithm, is evaluated by analyzing the algorithm's error rate. The results demonstrate that the proposed method improves power generation under various wave conditions by compensating for the unavoidable time delay of OWC-WECs, leading to a significant increase in annual power generation. In conclusion, the proposed method achieves approximately 31% higher annual power generation compared to the time delay controller.

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