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Study on mechanical properties and wellbore stability of deep brittle shale

机译:深脆页岩力学性能和井筒稳定性研究

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As the drilling depth of shale's oil and gas wells increases worldwide, the problem of borehole collapse and instability becomes increasingly serious. Due to the high content of brittle minerals in deep shale, the complex situation of an underground collapse of a site is often manifested as borehole wall caving and falling. On the basis of the deep shale of China's Longmaxi formation, we developed a simulation experiment involving the complex loading mechanics of underground working conditions. The influence of loading and unloading confining pressure speeds and the sealing properties of drilling fluid on the mechanical properties of rock were analyzed. We established the dynamic changes in borehole formation, combining seepage and pore pressure, the effective stress field around the well, and a method of evaluating wellbore stability in deep shale gas horizontal wells. The results show that the deep shale of the Longmaxi formation has a high brittle mineral content and is prone to brittle fracturing along parallel bedding surfaces under downhole pressure. The effective liquid column pressure at the bottom of the wells change noticeably under different working conditions. Changes in bottom hole fluid column pressure are the cause of the complicated situation of well leakage and overflow in the horizontal sections of the Longmaxi formation. The effective support confining pressure of borehole wall rock differs with different tripping out speeds. The faster the tripping out is, the less the support confining pressure of the wellbore rock and the easier it is to induce the rock to break down along the bedding. The effective sealing property of drilling fluid also affects wellbore stability. A good sealing property of drilling fluid can improve the supporting effect of the fluid on borehole wall rock and improve its resistance strength. On the whole, the pressure of the bottom hole liquid column is effectively controlled during drilling in the Longmaxi formation; this can avoid complicated situations such as well leakage. The results of this study provide a theoretical basis for the study of wellbore stability in deep shale formations during the drilling process.
机译:由于页岩的石油和天然气井的钻井深度在全球增加,钻孔塌陷和不稳定性的问题变得越来越严重。由于深页中的脆性矿物质含量高,部位的地下崩溃的复杂情况往往表现为钻孔壁洞和落下。在中国龙马西的深层页岩的基础上,我们开发了一种涉及地下工作条件的复杂装载机制的仿真实验。分析了装载和卸载压力速度的影响及钻井液对岩石力学性能的影响。我们建立了钻孔形成的动态变化,结合渗透和孔隙压力,井周围的有效应力场,以及评估深层页岩气水平井中的井筒稳定性的方法。结果表明,龙颌骨形成的深层页岩具有高脆性矿物质含量,并且在井下压力下沿着平行卧床表面易于脆性压裂。在不同的工作条件下井底的有效液体柱压显着变得明显。底部孔流体柱压力的变化是龙马曲线形成水平截面井漏和溢出的复杂情况的原因。钻孔壁岩的有效支撑压力与不同的绊倒速度不同。绊倒速度越快,井筒岩石的支撑限制压力越少,诱使岩石沿着床上用品分解的岩石越突出。钻井液的有效密封性能也影响井眼稳定性。钻井液的良好密封性能可以提高流体对钻孔壁岩石的支撑效果,提高其电阻强度。总的来说,在朗马西形成期间钻孔期间有效地控制底部孔液柱的压力;这可以避免复杂的情况,例如泄漏。该研究的结果为钻井过程中深层页岩地层井眼稳定性提供了理论依据。

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