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Dual-Gradient Drilling of Deepwater in South China Sea: What is the Well's Maximum Measured Depth and How to Improve It

机译:南海深水的双重梯度钻孔:井的最大井是多少,如何改善它

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In order to make extended-reach drilling (ERD) of deepwater cost-competitive and obtain the maximum reservoir contact, dual-gradient drilling (DGD) technology is more and more used in offshore drilling. In this study, a method to predict the maximum measured depth (MMD) of the offshore horizontal well by DGD method in deepwater is presented. The prediction model is established based on the dynamic pressure balance of bottom hole. Two prediction models of offshore horizontal well's MMD by subsea mudlift drilling (SMD) method and hollow glass spheres (HGS) method are analyzed and established respectively. Moreover, effects of flow behavior index, consistency coefficient, drilling fluid density and ROP on these predicted MMDs with two DGD methods are analyzed. Finally, an offshore horizontal well in the South China Sea is analyzed. Some optimization measures are also put forward to obtain higher MMD and maximize reservoir contact. The study shows that there is a decrease of the predicted MMD as the flow behavior index, consistency coefficient and ROP are increased. Moreover, effects of drilling fluid density on the predicted MMD with different drilling methods are also analyzed. It shows that the ERW's MMD first increases and then decreases with the increase in drilling fluid density. It also shows that DGD method is conducive to expanding the MWW of horizontal well in deepwater. This work provides a practical tool for predicting the horizontal well's MMD of DGD in deepwater and achieving greater MMD. The study is significant to maximize reservoir contact and obtain good economic benefits of oil and gas development in deepwater.
机译:为了使深水成本竞争力的延长钻井(ERD)获得最大水库接触,双重梯度钻井(DGD)技术越来越多地用于海上钻井。在该研究中,提出了一种预测DGD方法在深水中预测近海水平良好井的最大测量深度(MMD)的方法。基于底孔的动态压力平衡建立预测模型。通过海底泥浆钻井(SMD)方法和空心玻璃球(HGS)方法分别进行了两种预测模型。此外,分析了流动性指数,一致性系数,钻井液密度和具有两种DGD方法的这些预测MMD上的一致性系数,钻井液密度和ROP的影响。最后,分析了南海的海上水平井。还提出了一些优化措施,以获得更高的MMD并最大化储层接触。该研究表明,由于流动行为指数,预测MMD的降低,一致性系数和ROP增加。此外,还分析了具有不同钻井方法的钻井流体密度对预测MMD的效果。它表明,ERW的MMD首先增加,然后随着钻孔流体密度的增加而降低。它还表明,DGD方法有利于在深水中扩展水平井的MWW。这项工作提供了一种实用的工具,用于预测深水中的DGD的水平井MMD,实现更大的MMD。该研究对于最大化水库接触并获得深水油气开发的良好经济效益。

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