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WIND INDUCED NONLINEAR RESPONSE OF COUPLED SPAR PLATFORM

机译:耦合SPAR平台的风感非线性响应

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The oil and gas exploration has moved from shallow water to much deeper water far off the continental shelf. Spar platforms under deep water conditions are found to be the most economical and efficient type of offshore platform. Several Spar platforms installed in the Gulf of Mexico and North Sea proves its suitability for deep water exploration. Accurate prediction of motions of a Spar hull is very important for the integrity and associated costs of the riser/mooring line. The most common approach for solving the dynamics of Spar platform is to employ a decoupled quasi-static method, which ignores all or part of the interaction effects between the platform, mooring lines and risers. Coupled analysis, which includes the mooring lines, risers and platform in a single model, is the only way to capture the damping from mooring lines and risers in a consistent manner. The present coupling is capable in matching the forces, displacement, velocities and acceleration for mooring line with Spar hull at the fairlead position and riser with Spar hull at the riser keel connection. It can handle possible significant nonlinearities. The output from such analyses will be platform motions as well as a detailed mooring line and riser responses. In actual field problems hydrodynamic and aerodynamic loads act simultaneously on Spar platform, mooring lines and risers. In finite element model, the entire structure acts as a continuum. This model can handle all nonlinearities, loading and boundary conditions. The selected configuration of Spar platform is analysed under wave force together with wind loading and its structural response behaviour in steady state is studied. An automatic Newmark-p time incremental approach in ABAQUS/AQUA environment has been implemented to conduct the analysis in time domain. The wind force acting on the exposed part of the platform encompasses mean and fluctuating wind components. The frontal region includes the topside assembly and the spar hull portion above the sea level. High degree of nonlinearities makes the solutions convergence sensitive and it requires large number of iterations, at each time station. Spar responses in surge, heave and pitch along with top tension in moorings are computed. The coupled Spar experiences significant lateral shift along wave direction due to wind loading. Increase in standard deviation shows the participation of wind loading giving higher fluctuations. The CML tension increases for wind loading but the extent of the tension fluctuations under wind loading is not much due to high pretension of mooring line.
机译:石油和天然气的勘探已从浅水转移到了远离大陆架的更深水。发现深水条件下的晶石平台是最经济和最有效的海上平台类型。在墨西哥湾和北海安装的几个Spar平台证明了其适用于深水勘探。对于竖板/系泊缆的完整性和相关成本,准确预测Spar船体的运动非常重要。解决Spar平台动力学的最常见方法是采用解耦的准静态方法,该方法忽略了平台,系泊缆绳和立管之间的全部或部分相互作用。包含单个模型中的系泊缆,立管和平台的耦合分析是唯一以一致的方式捕获系泊缆和立管的阻尼的方法。本联接器能够使力线,力,位移,速度和加速度匹配,以使缆绳在导缆器位置处具有Spar船体,而在立管龙骨连接处具有Spar船体的立管。它可以处理可能的重要非线性。这些分析的输出将是平台运动以及详细的系泊缆和立管响应。在实际的现场问题中,流体动力和空气动力载荷同时作用在Spar平台,系泊缆和立管上。在有限元模型中,整个结构充当连续体。该模型可以处理所有非线性,载荷和边界条件。在波浪力和风荷载作用下分析了Spar平台的选定配置,并研究了其在稳态下的结构响应行为。已经实现了在ABAQUS / AQUA环境中自动执行Newmark-p时间增量方法以在时域中进行分析。作用在平台裸露部分上的风力包括平均和波动的风力成分。正面区域包括顶侧组件和海平面以上的翼梁船体部分。高度的非线性度使解决方案收敛敏感,并且每个时间站都需要进行大量迭代。计算浪涌,升沉和俯仰中的翼梁响应以及系泊中的顶部张力。由于风荷载作用,耦合的翼梁沿波浪方向发生明显的横向偏移。标准偏差的增加表明风荷载的参与会产生较大的波动。对于风荷载,CML张力会增加,但由于系泊索的高预应力,风荷载下的张力波动程度并不大。

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