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Design of a Floating Spar Wind Platform with an Integrated Substructure and Tower

机译:带有下部结构和塔架的浮动式翼梁风平台的设计

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The proposed concept relates to modifying the construction/assembly method to reduce the cost and schedule of a floating Spar wind platform. Detailed analysis was performed and execution plan developed to quantify the benefits of integrating the tower and the substructure at the construction yard in a horizontal position compared to installing the tower by lifting while the wind platform is floating vertically. Current offshore wind turbines are typically assembled by lifting and bolting standard onshore towers and wind turbine generators (WGT) onto a purpose designed floater. The concept presented here proposes to integrate the tower section and the floater at the fabrication yard while in horizontal position. During an internal Research and Development study of a floater with a long cylindrical design, like a Classic/Cell Spar, the Construction method was developed following which each phase of marine operations was carefully analyzed and compared with the conventional execution plan used to construct and assemble a floating Spar Wind platform. The equipment normally included in the Tower were investigated with the vendors for feasibility to be transported in a horizontal position. The Construction and Assembly method can be used for more efficient execution of future Spar and other floating structure type Wind Platforms. It was proven that: 1. The integrated structure can withstand the loads during loadout/launching from the yard and float off, 2. The integrated structure can handle the loads during a horizontal tow for transport from the fabrication yard to the inshore assembly site. Bending moments and shear forces were confirmed within acceptable limits. 3. The integrated structure can withstand loads during upending, from the horizontal to vertical position, 4. The integrated structure can handle the hydrostatic pressure should partial submergence be required for lift height during mating of the WTG. Positions of openings in the hull, for handling water ballast for upending, solid ballast and water deballast following upending, need to be considered. Overall construction and assembly schedule was found to be efficient and added benefit to the concept. This integrated method creates the following two main advantages: 1. It removes the challenges of the mating interface flange between the floater and the tower. This flange can prove costly. It also has limitations in term of size and load capacity that could potentially impact future development. The welding solution can accommodate a wider range of diameters, hence wider range of rotor dimensions. 2. It simplifies mating operations and makes the mating schedule more efficient. It allows the use of smaller floating cranes for mating, as systems can be partially submerged to limit the lift height during mating. It reduces and simplifies the infrastructure spread required for mating operations. This proposed solution offers an opportunity to simplify project execution, reduce cost and interface risks, and open the doors to larger structure design optimization.
机译:所提出的概念涉及修改构造/组装方法以减少浮动Spar风平台的成本和进度。进行了详细的分析,并制定了执行计划,以量化与通过在风平台垂直漂浮的情况下进行吊装来安装塔架相比,将塔架和下部结构在水平位置集成在施工场中的好处。当前的海上风力涡轮机通常是通过将标准的陆上塔架和风力涡轮机发电机(WGT)吊起并用螺栓固定到专用浮子上来组装的。此处提出的概念建议在水平位置将塔架部分和浮子集成在制造场地中。在内部研究和开发研究中,对长圆筒形浮子(例如经典/单元晶石)进行了研究,开发了施工方法,随后仔细分析了海上作业的每个阶段,并将其与用于建造和组装的常规执行计划进行了比较浮动的Spar Wind平台。已与供应商一起调查了通常包含在塔中的设备,以确保其在水平位置运输的可行性。构造和装配方法可用于更有效地执行将来的Spar和其他浮动结构类型的风平台。事实证明:1.集成结构可以承受从船坞进行装载/发射期间的负载并浮起; 2.集成结构可以在水平拖曳过程中处理从制造厂到岸上装配现场的负载。弯矩和剪切力在可接受的范围内确定。 3.集成结构可以承受从水平位置到垂直位置的上翻过程中的载荷。4.如果在WTG的对接过程中,举升高度需要部分浸入,则集成结构可以承受静水压力。需要考虑船体上开口的位置,用于处理颠簸的压载水,颠簸后的固体压载水和压载水。发现总体施工和组装进度表是高效的,并为该概念带来了更多好处。这种集成方法具有以下两个主要优点:1.消除了浮子和塔架之间的配对接口法兰的难题。该法兰可以证明是昂贵的。在大小和负载能力方面也有局限性,可能会影响未来的发展。焊接解决方案可以适应更大范围的直径,因此可以适应更大范围的转子尺寸。 2.简化了交配操作,使交配进度更加有效。它允许使用较小的浮吊进行配对,因为系统可以部分浸入水中以限制配对时的举升高度。它减少并简化了对接操作所需的基础架构扩展。该提议的解决方案提供了一个机会,可以简化项目执行,降低成本和界面风险,并为进行更大的结构设计优化打开方便之门。

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