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Thermoporoelastic Modeling of Time-Dependent Wellbore Strengthening and Casing Smear

机译:随时间变化的井眼加固和套管涂抹的热孔隙弹性模型

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One of the most critical aspects in the drilling operation is to reduce the nonproductive time and to avoid the borehole instability issues such as kicks, blow outs, lost circulation, stuck pipe, and breakouts. To investigate these problems, one has to understand the formation properties, fluid hydraulics, and the basic mechanics behind drilling a well. In the previous research on this field, the factors were widely discussed and results obtained were related to the formation properties. However, while considering the stresses in the wellbore, the mechanical factors such as the RPM and contact of casing at different positions in wellbore have usually been neglected. In furtherance to this study, the importance of thermal condition, fluid loss, and filter cake formation study cannot be out ruled. This work includes a new insight toward understanding the stress redistribution due to pipe contact by the wellbore and smear mechanism. Additionally, it presents the numerical analysis of influence of casing contact and downhole thermal conditions using the finite-element analysis. The classical equations used to obtain the wellbore stresses include very few parameters such as the far-field stresses, pore pressure, and wellbore geometry. They do not consider the influence of casing contact while drilling, mud-cake permeability, and elastic and inelastic properties of the formation. To take into account the effects of these parameters, finite-element analysis is carried out considering the above-mentioned parameters in various scenarios. The main objective of these simulations is to investigate the hypothesis of the increase in hoop stress considering casing contact with regard to formation stresses orientation. The study of different cases shows the variation of a few hundred psi of hoop stress. However, the thermal effect on the near-wellbore stress regions can be important for drilling in deep water and other complex drilling environments. To see the thermal effect, this study develops a thermoporoelastic model. It is found that there is decrease in radial stress and hoop stress in near-wellbore region with time. This reduction will have a considerable impact on fracture initiation pressure in the near-wellbore region. Also, the smearing effect will be influenced by stress changes due to change in temperature.
机译:钻井作业中最关键的方面之一是减少非生产时间并避免井眼不稳定问题,例如井涌,井喷,井漏,管道卡死和井喷。为了研究这些问题,必须了解地层特性,流体水力学以及钻探井的基本原理。在该领域的先前研究中,对这些因素进行了广泛讨论,并且获得的结果与地层性质有关。然而,在考虑井眼中的应力时,通常忽略了诸如RPM和套管在井眼中不同位置处的接触之类的机械因素。为了促进这项研究,不能排除热条件,流体损失和滤饼形成研究的重要性。这项工作为了解由于井眼和涂抹机制引起的管道接触引起的应力重新分布提供了新的见解。此外,它还使用有限元分析方法对套管接触和井下温度条件的影响进行了数值分析。用于获得井眼应力的经典方程式包含很少的参数,例如远场应力,孔隙压力和井眼几何形状。他们没有考虑钻井时套管接触,泥饼渗透率以及地层的弹性和非弹性性质的影响。为了考虑这些参数的影响,在各种情况下考虑上述参数进行了有限元分析。这些模拟的主要目的是研究考虑套管接触的地层应力方向时环向应力增加的假设。对不同情况的研究显示了数百psi的环向应力变化。但是,对近井眼应力区域的热效应对于在深水和其他复杂的钻井环境中进行钻井可能很重要。为了观察热效应,本研究建立了热多孔弹性模型。发现随着时间的推移,近井眼区域的径向应力和环向应力减小。这种减小将对近井眼区域中的裂缝起始压力产生相当大的影响。同样,拖尾效应将受温度变化引起的应力变化的影响。

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