Assessing the Impact of Integrating Energy Storage on the Dynamic Response of a Spar-Type Floating Wind Turbine

C. Cutajar, T. Sant, R. Farrugia, D. Buhagiar
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引用次数: 3

Abstract

Offshore wind technology is at the forefront of exploiting renewable energy at sea. The latest innovations in the field comprise floating wind turbines deployed in deep waters that are capable of intercepting the stronger, less turbulent winds farther away from the landmass. Despite being able to augment the power harnessed, wind resources remain intermittent in nature, and so unable to satisfy the energy demand at all times. Energy storage systems (ESS) are therefore being considered a key component to smoothen out the supply-demand mismatch when wind penetration into electricity grids increases. Yet, multiple issues pertaining to the integration of ESSs on large-scale projects arise, including economic, environmental and safety considerations. This paper presents a novel concept for integrating a hydro-pneumatic energy storage (HPES) system within a spar-type floating offshore wind turbine (FOWT) platform. It aims to assess the technical feasibility of integrating the storage unit within the floater. A preliminary investigation on the influence of integrated storage on the static stability and hydrostatic response of a conventional ballast-stabilised FOWT is conducted, followed by numerical simulations for the dynamic response using ANSYS® AQWA™. Based on the results presented, several conclusions are drawn on the implications of integrating energy storage with floating wind turbine structures. Finally, a preliminary assessment of the thermal efficiency of the storage system based on this specific embodiment is also presented and discussed.
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集成储能对桅杆式浮式风力机动态响应的影响评估
海上风能技术处于海上可再生能源开发的前沿。该领域的最新创新包括部署在深水中的浮动风力涡轮机,它能够拦截远离陆地的更强、更少湍流的风。尽管能够增加所利用的电力,但风力资源在本质上仍然是间歇性的,因此无法随时满足能源需求。因此,当风能渗透到电网中时,储能系统(ESS)被认为是消除供需不匹配的关键组成部分。然而,在大型项目中纳入可持续环境评价方面出现了许多问题,包括经济、环境和安全方面的考虑。本文提出了一种将油气储能系统集成到桅杆式海上风力发电平台中的新概念。其目的是评估将存储单元集成到浮子中的技术可行性。初步研究了集成蓄流对传统压舱稳定式FOWT静稳定性和流体静力响应的影响,并利用ANSYS®AQWA™软件对其动态响应进行了数值模拟。基于所提出的结果,得出了将储能与浮式风力发电机组结构相结合的几点结论。最后,提出并讨论了基于该具体实施例的存储系统热效率的初步评估。
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