Experimental and Numerical Study of Motion of Rotating Drill Pipe Owing to Magnus Effect

Tomoya Inoue, Hiroyoshi Suzuki, T. Katsui, Keita Tsuchiya, Yusuke Notani
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引用次数: 1

Abstract

During riserless drilling operations conducted in some scientific drillings and the initial stages of all oil and gas drilling operations, drill pipe motions such as vortex induced vibration, whirl motion, and motion due to the Magnus effect are generated. The last motion represents an interesting and important phenomenon that generates a lift force in addition to a drag force due to the ocean current and the rotation of the drill pipe. Accordingly, this study focuses on the drill pipe motions owing to the Magnus effect. An analytical model of a drill pipe was established by applying an absolute nodal coordinate formulation (ANCF) that can capture the behavior of a relatively flexible and long pipe, such as a drill pipe. The lifting and drag forces are calculated using computational fluid dynamics (CFD), and the lift and drag coefficients are calculated for several different drill pipe rotational velocities and ocean current velocities. A series of model experiments were conducted in a towing tank, with changing water flow velocities and rotational speed of the drill pipe model to observe the corresponding changes in the Magnus effect and to measure the resulting drill pipe motions. Additionally, the resulting drag and lift forces were measured. It was observed from the experiments that the motions in the cross-flow direction increased as the rotational speed of the drill pipe model increased, and that the lifting force increased as the rotational speed increased. The drill pipe motions were then simulated using a previously established analytical model and the results of the CFD simulations. The results of the simulations were evaluated against the results of the experiments, and reasons for observed discrepancies are discussed.
马格纳斯效应作用下旋转钻杆运动的实验与数值研究
在一些科学钻井和所有油气钻井作业的初始阶段进行无隔水管钻井作业时,钻杆会产生涡激振动、旋转运动和马格努斯效应运动等运动。最后一个运动代表了一个有趣而重要的现象,它在洋流和钻杆旋转的作用下产生了升力和阻力。因此,本文的研究重点是由于马格努斯效应引起的钻杆运动。应用绝对节点坐标公式(ANCF)建立了钻杆的解析模型,该模型可以捕捉相对柔性的长钻杆的行为。利用计算流体动力学(CFD)计算了举升和阻力,并计算了几种不同钻杆转速和洋流速度下的举升和阻力系数。在拖曳槽中,通过改变水流速度和钻杆模型的转速,进行一系列模型实验,观察相应的马格努斯效应变化,并测量由此产生的钻杆运动。此外,还测量了产生的阻力和升力。实验观察到,随着钻杆模型转速的增加,横流方向的运动增加,举升力随转速的增加而增加。然后使用先前建立的分析模型和CFD模拟结果模拟钻杆的运动。对模拟结果与实验结果进行了比较,并讨论了产生差异的原因。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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