Feasibility Study of Mooring Lines Design for a Floating Tidal Turbine Platform Using Double Hull Structure

N. Arini, P. Thies, L. Johanning, E. Ransley, S. Brown, N. Xie, D. Greaves
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Abstract

The aim of this paper is to study the mooring tension characteristics on a tidal energy converter (TIC) platform considering i) a horizontal and ii) a vertical tidal turbine. The study examines numerically the feasibility of a catenary mooring line for a modular tidal energy platform. A modular platform is designed and modelled with two floating hulls and anchored by studlink catenary mooring chains on the seabed. Vertical and horizontal axis turbines which have similar Cp are selected and modelled separately. The effect of those turbines on the mooring system are compared and the results informs lifetime of the mooring component for each turbine connection. The hydrodynamic model with no turbine is firstly developed and validated against an experiment with 1:12 scale ratio. The starboard fore mooring line tension, platform surge and pitch displacements are validated against the experiment. The model results show identical signal frequency with slightly different magnitude from the experiment. The mooring tension under vertical and horizontal tidal turbine operations in the particular environment is further examined. The result shows that the mooring line using selected vertical axis turbine experiences higher tension. For platform motions, the horizontal turbine generates slightly larger displacement in surge. However the pitch motion record shows equal displacement under both turbine operations. The selected vertical axis tidal turbine also produces longer lifetime mooring components.
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双壳结构浮式潮汐轮机平台系泊线设计可行性研究
本文的目的是研究一个潮汐能转换器(TIC)平台上的系泊张力特性考虑i)水平和ii)垂直潮汐涡轮机。本文对模块化潮汐能平台悬链线系泊的可行性进行了数值验证。模块化平台设计和建模了两个浮动船体,并在海床上通过悬链链锚固。选择具有相似Cp的垂直轴和水平轴涡轮机分别进行建模。这些涡轮机对系泊系统的影响进行了比较,结果为每个涡轮机连接的系泊组件的寿命提供了信息。首先建立了无水轮机的水动力模型,并以1:12的比例进行了试验验证。通过实验验证了右舷前系缆张力、平台浪涌和俯仰位移。模型结果表明,信号频率与实验结果一致,但幅度略有不同。进一步研究了潮汐能水轮机垂直和水平运行时在特定环境下的系泊张力。结果表明,选用的垂轴水轮机系泊索受力较大。对于平台运动,水平涡轮在喘振中产生稍大的位移。然而,俯仰运动记录显示在两种涡轮机运行下的相等位移。所选择的垂直轴潮汐涡轮机也产生更长的寿命系泊组件。
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