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首页> 外文期刊>Journal of natural gas science and engineering >Analyzing wellbore stability in chemically-active anisotropic formations under thermal, hydraulic, mechanical and chemical loadings
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Analyzing wellbore stability in chemically-active anisotropic formations under thermal, hydraulic, mechanical and chemical loadings

机译:在热,液压,机械和化学载荷下在化学活性各向异性形成中分析井眼稳定性

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Several factors influence the stress state in subsurface rocks. In addition to pore pressure and far-field in situ stresses, thermal and chemical gradients have substantial bearings on the in-situ stress state during and after drilling operations. Drilling inclined boreholes through laminated formations such as shaley sands presents several challenges. Due to their laminated nature, shales demonstrate high degree of elastic anisotropy, and are often chemically-reactive to drilling fluid. The majority or models utilized in the industry assume a homogeneous isotropic elastic static model that fails to give an accurate depiction of the observed borehole failure. In this work, governing equations for anisotropic porochemo-thermoelasticity are developed to simulate the drilling of an inclined borehole problem in a transversely isotropic rock. Using the developed constitutive and transport equations, a finite element method based numerical model is constructed to estimate the pore pressure, temperature, solute concentration and stress distribution. Nonlinear conductive-convective heat transfer and diffusive-advective solute transfer models are considered in this work to address both high and low permeability formations. Finally, the model is used to assess time-dependent wellbore stability during.and after drilling. The novel pseudo-3D analysis developed in this work is advantageous for real-time operations due to its computational speed and stability. (C) 2017 Elsevier B.V. All rights reserved.
机译:几个因素会影响地下岩石中的应力状态。除了孔隙压力和远场的原位应力之外,在钻井作业期间和之后,热和化学梯度在原位应力状态下具有大量轴承。通过层叠地层钻孔倾斜的钻孔,例如Shaley Sands呈现了几个挑战。由于其层压性质,Shales证明了高度的弹性各向异性,并且通常对钻井液进行化学反应。业内利用的大多数或模型假设均匀的各向同性弹性静态模型,该模型未能对观察到的钻孔失效进行准确地描述。在该作品中,开发了针对各向异性Porochemo热弹性的控制方程,以模拟横向各向同性岩石中倾斜的钻孔问题的钻孔。使用所开发的本构体和传输方程,构建了基于有限元方法的数值模型以估计孔隙压力,温度,溶质浓度和应力分布。在这项工作中考虑了非线性导电 - 对流热传递和扩散 - 平面溶质转移模型,以解决高和低渗透性形成。最后,该模型用于在钻井后评估时间依赖的井筒稳定性。在该工作中开发的新型伪3D分析对于由于其计算速度和稳定性而具有实时操作的有利。 (c)2017 Elsevier B.v.保留所有权利。

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