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Measurement and simulation of nonlinear drillstring stick-slip and whirling vibrations

机译:非线性钻孔粘滑和旋转振动的测量与仿真

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When drilling ultra-deep wells with polycrystalline diamond compact (PDC) bits, the drillstring suffered from severe vibrations that were responsible for the premature failure of drillstring components and the inefficient drilling process. In this paper, a field experiment was conducted in an ultra-deep well to measure the downhole tri-axial accelerations of the drillstring. The analyses of the acceleration data in the time and frequency domains show that the drillstring is subjected mainly to violent stick-slip and whirling vibrations. Comparisons between two adjacent sets of tri-axial acceleration data suggest that the occurrence of stick-slip oscillations intensifies the downhole drillstring whirling vibrations. To numerically study the measured stick-slip and whirling vibrations, a fully coupled finite element model for the axial, torsional and lateral vibrations of the drillstring is developed. The bit-rock interaction, which is responsible for the stick-slip oscillations, is modeled by a non-regularized dry friction law, the key parameters of which are fitted by the experimental results. Hertzian contact theory is used to model the nonlinear contacts between the drillstring and the wellbore wall. The downhole angular velocity fluctuations that are due to the stick-slip oscillations are also considered, and they lead to the coupling between the stick-slip and the whirling vibrations. The satisfactory agreement between the numerical and experimental results supports the fidelity of the proposed finite element model. The experimentally observed intensifying effects of the stick-slip oscillations on the whirling vibrations are verified via comparisons between simulation results with and without consideration of the coupling effects. On this basis, parametric studies are conducted to analyze the influence of the drilling parameters on the stick-slip oscillations and the whirling behaviors.
机译:当用多晶硅金刚石(PDC)位钻孔超深井时,钻头突出的严重振动,负责钻孔组件的过早失效和低效的钻井过程。在本文中,在超深井中进行现场实验,以测量钻孔的井下三轴加速度。时间和频域中加速度数据的分析表明,钻头纹主要用于剧烈的粘滑和旋转振动。两个相邻的三轴加速度数据组之间的比较表明,粘滑振荡的发生增强了井下钻头旋转振动。为了在数值上研究测量的粘滑和旋转振动,开发了用于钻头的轴向,扭转和横向振动的完全耦合的有限元模型。负责粘滑振荡的位岩石相互作用由非规则化的干摩擦法建模,其关键参数由实验结果配备。 Hertzian接触理论用于在钻钻和井筒壁之间建模非线性触点。还考虑了由于粘滑振荡而导致的井下角速度波动,并且它们导致粘滑和旋转振动之间的耦合。数值和实验结果之间的令人满意的协议支持所提出的有限元模型的保真度。通过模拟结果与耦合效果的模拟结果与耦合效果的比较验证了实验观察到旋转振动对旋转振动的强化效果。在此基础上,进行参数化研究以分析钻井参数对粘滑振荡和旋转行为的影响。

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