Numerical Simulation of a Floating Offshore Wind Turbine Incorporating an Electromagnetic Inerter-Based Device for Vibration Suppression and Wave Energy Conversion

Takehiko Asai, Shota Tsukamoto, Y. Nemoto, Kenji Yoshimizu, Urara Watanabe, Y. Taniyama
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Abstract

Offshore wind turbines (OWTs) are considered vital to the promotion of the development of renewable energy. Especially, floating OWTs can be deployed over a larger area than bottom-fixed OWTs. The floating OWTs, however, are vulnerable to vibration induced by disturbances and require a backup power supply in the case of power outage. On the one hand, various kinds of inerter-based devices have been proposed especially for vibration suppression of civil structures subjected to earthquake loadings. Recently, combined with electromagnetic devices, the inerter technologies have also been applied in the field of vibration energy harvesting such as point absorber wave energy converters. Thus, this paper proposes a novel floating OWT consisting of two bodies combined with inerter-based power take-off (PTO) devices which accomplishes vibration suppression and wave energy conversion at the same time. To investigate the vibration suppression and energy conversion capabilities of the proposed floating OWT with a variety of inerter-based PTO devices for ocean waves, numerical simulation studies employing WEC-Sim are conducted, and the performance of each system is compared for regular and irregular waves. Results show that the proposed floating OWT with the appropriately designed inerter-based PTO devices for the incident wave period has great potential for both vibration suppression and wave energy conversion in a specific frequency range.
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基于电磁干涉器的海上浮式风力机抑振与波能转换装置的数值模拟
海上风力发电机(OWTs)被认为是促进可再生能源发展的关键。特别是,浮动式油管可以部署在比底部固定油管更大的区域。然而,浮动的owt很容易受到干扰引起的振动,并且在停电的情况下需要备用电源。一方面,针对地震作用下土木结构的减振问题,提出了各种基于互励的装置。近年来,与电磁器件相结合,干涉器技术也被应用于振动能量收集领域,如点吸收波能转换器。因此,本文提出了一种由两体结合基于互扰的功率输出(PTO)装置组成的新型浮动OWT,同时实现了振动抑制和波能转换。为了研究采用多种基于互干扰的PTO装置的浮动OWT对海浪的振动抑制和能量转换能力,采用WEC-Sim进行了数值模拟研究,并比较了每种系统在规则波和不规则波中的性能。结果表明,在特定频率范围内,通过适当设计入射波周期的基于interter的PTO器件,所提出的浮动OWT具有很大的振动抑制和波能转换潜力。
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