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A MULTIBODY SYSTEM APPROACH TO DRILL STRING DYNAMICS MODELING

机译:钻柱动力动力学建模的多体系统方法

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The selection of optimal operational parameters for drilling oil and gas wells is a complex dynamic problem that depends on multiple parameters. Numerous physical and mechanical processes such as rock cutting, friction, hydraulics, and different modes of vibrations, occur during drilling, which should be accounted for in numerical models. It is widely accepted that bottom hole assembly (BHA) vibrations are the primary source of drilling equipment premature failure. Over the last 30 years, progress of computational sciences has enabled the use of numerical simulations of drillstring dynamics as a useful tool to understand and mitigate sources of harmful vibrations. The majority of these models have been based on nonlinear finite elements. There are several significant limitations with this approach, including an extremely high number of degree of freedom (DOF) required to represent geometries with 105 ratio of axial to lateral dimensions and also the complexity of modeling variable contacts in bifurcating systems. While it is relatively new for simulating drilling dynamics , the advantage of the proposed rigid-flexible multibody system approach has been proven for modeling complex dynamic systems in other industries. Using a rigid-flexible multibody system approach to analyze dynamic effects both in frequency and time domains, dynamic modeling of BHA and drillstring is proposed. Drillstring is simulated as a set of uniform flexible beams connected via linear viscous-elastic force elements. Each beam can undergo arbitrary large displacements as absolutely rigid body, but its flexible displacements due to elastic deformations are small. A method of floating frame of reference for flexible bodies and component mode synthesis is used for modeling beams dynamics. Parameters of the coupling force elements are calculated automatically based on stiffness and inertia characteristics of the connected beams. This paper discusses the development of the rigid-flexible multibody system for modeling drillstring dynamics and the influence of model parameters on simulation accuracy and calculation time. A close match is shown between theoretical and numerical results for static and buckling problems as well as resonant frequency values. Several transient drillstring dynamics problems are analyzed for wellbores with uniform diameter. Examples of the analysis of resonant conditions during drilling planning stage are also presented. It is also shown how transient time domain analysis can provide further insights into lateral and torsional vibrations, whirl behavior, and effect of local wellbore curvatures on the drillstring performance.
机译:钻探石油和天然气井的最佳操作参数是一个复杂的动态问题,它取决于多个参数。在钻孔过程中会发生许多物理和机械过程,例如岩石切割,摩擦,水力和不同的振动模式,这应该在数值模型中加以说明。井底组件(BHA)振动是钻井设备过早失效的主要来源,这一点已被广泛接受。在过去的30年中,计算机科学的进步使钻柱动力学的数值模拟成为了解和减轻有害振动源的有用工具。这些模型中的大多数都基于非线性有限元。这种方法有几个明显的局限性,包括表示轴向尺寸与横向尺寸之比为105的几何形状所需的极高的自由度(DOF),以及在分叉系统中建模可变触点的复杂性。虽然它是一种相对较新的用于模拟钻井动力学的方法,但已提出的刚柔多体系统方法的优点已被证明可用于对其他行业的复杂动力系统进行建模。利用刚柔多体系统方法分析频域和时域的动力影响,提出了BHA和钻柱的动态建模方法。钻柱被模拟为一组通过线性粘弹性力单元连接的均匀柔性梁。每个梁可以作为绝对刚体经历任意大的位移,但是由于弹性变形而产生的柔性位移很小。一种用于弹性体和分量模式合成的浮动参考系的方法用于对梁动力学进行建模。基于连接梁的刚度和惯性特性,可以自动计算耦合力元素的参数。本文讨论了用于建模钻柱动力学的刚柔多体系统的开发以及模型参数对仿真精度和计算时间的影响。对于静态和屈曲问题,以及谐振频率值,理论和数值结果之间显示出紧密匹配。对于直径均匀的井眼,分析了几个瞬态钻柱动力学问题。还介绍了在钻探计划阶段进行共振条件分析的示例。还显示了瞬态时域分析如何能够提供有关侧向和扭转振动,旋涡行为以及局部井眼曲率对钻柱性能的影响的进一步见解。

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