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Neural-network prediction of riser top tension for vortex induced vibration suppression

机译:涡旋诱导振动抑制提升机顶部张力的神经网络预测

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Vortex induced vibration (VIV) of marine riser is a significant challenge for the offshore oil and gas industry. Traditional passive suppression devices which are commonly used in permanent production risers to reduce the risks of collision caused by VIV are less practical to be utilized in short-term drilling operation due to expensive overhead cost and installation time factors. This paper studied active control of riser VIV by tuning the tensioner output force (pretension) so that this method can be utilized in short-term operation, such as drilling, without adding additional high-cost systems. A novel active control method by using neural network in tuning top tension of marine riser was studied to examine the effectiveness of VIV suppression. A response surface was derived from VIV experimental data and used to predict the targeted riser top tension to be exerted by the tensioner under different conditions. Reduction of VIV amplitude has been identified for the range of applicability. The findings of this paper have identified the practical scope of active control for riser top tension tuning to suppress VIV.
机译:涡旋诱导振动(VIV)的海洋提升机是海上石油和天然气工业的重大挑战。通常用于永久性生产提升器中的传统无源抑制装置,以降低由VIV引起的碰撞风险,由于昂贵的开销成本和安装时间因素,在短期钻探操作中不太实用。本文通过调整张紧器输出力(预张紧)来研究RISER VIV的主动控制,使得该方法可以用于短期操作,例如钻孔,而无需增加额外的高成本系统。研究了一种新的主​​动控制方法,通过使用神经网络调整海上提升器的顶部张力,以检查VIV抑制的有效性。响应表面源自VIV实验数据,并用于预测在不同条件下由张紧器施加的目标立管顶张力。已经确定了用于适用范围的VIV振幅。本文的研究结果已经确定了立管顶部张力调谐的主动控制的实际范围,以抑制VIV。

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