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Pseudo random interpretation of double hinged ALP under aerodynamic loading

机译:空气动力载荷下双铰链ALP的伪随机解释

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Summary Wind produces three different types of effects on structure: static, dynamic and aerodynamic. When the structure deflects in response to wind load then the dynamic and aerodynamic effects should be analysed. The basic mode of an articulated tower is the motion characterized by rigid body sway compliant with a relatively high natural period. The higher modes of oscillation have smaller periods, and their influence is rather insignificant in the overall platform motion. Since the wind velocity spectrum of the fluctuating component has lower frequency energy content, the wind induced vibration of an articulated tower may be significant. The wind induced overturning moment increases linearly with the height of the structure, and thus, as these structures are built in deep and deeper water, the effects of wind drag then become increasingly significant in design. To approach towards the realistic environment, the dynamic analysis of double-hinged articulated tower under the action of wind, waves and current has been carried out. The wave forces with the interaction of current have been computed by the application of Stokes’ fifth order nonlinear wave theory. The sea state with respect to wind speed of 25 m/s (Hs = 18.03 m, Tz = 13.59 s) has been considered and standard wind velocity spectrum Ahsan Kareem has been used for the dynamic analysis. The Pierson Moskowitz sea surface elevation spectrum has been used to model the random wave loads. The responses have been obtained under multi-point wind field. The study shows that energy content under combined action of wave and wind forces is more than energy derived under wave alone forces. Results also show that upper hinge is more dynamically active than lower hinge due to wind forces. PSDF shows that wind forces do not practically affect the bending moment, which is predominantly governed by the second mode of frequency; however, the other response parameters like deck displacement, hinge rotation and hinge shear were affected in significant manner under the action of wind forces.
机译:摘要风产生三种不同类型的结构效果:静态,动态和空气动力学。当结构偏转响应风负荷时,应分析动态和空气动力学效果。铰接塔的基本模式是通过刚性的刚性摇摆符合具有相对高的自然时期的运动。振荡模式的较高模式具有较小的时期,并且它们的影响在整个平台运动中相当微不足道。由于波动组分的风速谱具有较低的频率能量含量,因此风塔的风诱导的铰接塔的振动可能是显着的。随着结构的高度,风引起的倾斜时刻随着结构的高度而线性增加,因此,随着这些结构构建在深层和更深的水中,风拖效应在设计中变得越来越重要。为了实现现实环境,进行了风,波浪和电流作用下双铰干铰接塔的动态分析。通过应用Stokes'第五阶非线性波理论来计算具有电流相互作用的波力。已经考虑了相对于25米/秒(HS = 18.03M,TZ = 13.59秒)的风速的海区,并且标准风速谱Ahsan Kareem已被用于动态分析。 Pierson Moskowitz海面仰角谱已经用于模拟随机波负荷。在多点风场下获得了响应。该研究表明,波浪和风力的组合作用下的能量含量远远超过波浪单独力的能量。结果还表明,由于风力,上铰链比下铰链更具动态主动。 PSDF表明,风力在实际上不会影响弯矩,这主要由第二频率模式控制;然而,在风力的作用下,甲板位移,铰链旋转和铰链剪切等其他响应参数受到显着的影响。

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