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ANN-Based Airflow Control for an Oscillating Water Column Using Surface Elevation Measurements

机译:使用表面高程测量的摆动水塔基于ANN的气流控制

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摘要

Oscillating water column (OWC) plants face power generation limitations due to the stalling phenomenon. This behavior can be avoided by an airflow control strategy that can anticipate the incoming peak waves and reduce its airflow velocity within the turbine duct. In this sense, this work aims to use the power of artificial neural networks (ANN) to recognize the different incoming waves in order to distinguish the strong waves that provoke the stalling behavior and generate a suitable airflow speed reference for the airflow control scheme. The ANN is, therefore, trained using real surface elevation measurements of the waves. The ANN-based airflow control will control an air valve in the capture chamber to adjust the airflow speed as required. A comparative study has been carried out to compare the ANN-based airflow control to the uncontrolled OWC system in different sea conditions. Also, another study has been carried out using real measured wave input data and generated power of the NEREIDA wave power plant. Results show the effectiveness of the proposed ANN airflow control against the uncontrolled case ensuring power generation improvement.
机译:振荡水柱(OWC)工厂由于停转现象而面临发电限制。可以通过气流控制策略来避免此行为,该策略可以预见传入的峰值波并降低其在涡轮机管道内的气流速度。从这个意义上讲,这项工作旨在利用人工神经网络(ANN)的能力来识别不同的入射波,以便区分引起失速行为的强波并为气流控制方案生成合适的气流速度参考。因此,使用波的实际表面高程测量值来训练ANN。基于ANN的气流控制将控制捕获室中的空气阀,以根据需要调节气流速度。已经进行了比较研究,以比较在不同海况下基于人工神经网络的气流控制与不受控制的OWC系统。另外,已经使用实际测量的波输入数据和NEREIDA波电厂的发电量进行了另一项研究。结果表明,针对不受控制的情况,所提出的ANN气流控制可确保发电效率的提高。

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