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Evaluation of liquid lift approach to dual gradient drilling

机译:双斜井钻井液提升方法的评价

摘要

In the past, the oil and gas industry has typically used the single gradient system to drill wells offshore. With this system the bottom hole pressure was controlled by a mud column extending from the drilling rig to the bottom of the wellbore. This mud column was used to achieve the required bottom hole pressure. But, as the demand for oil and gas increased, the industry started exploring for oil and gas in deep waters. Because of the narrow margin between the pore and fracture pressures it is somewhat difficult to reach total depth with the single gradient system. This led to the invention of the dual gradient system. In the dual gradient method, heavy density fluid runs from the bottom hole to the mudline and a low density fluid from the mudline to the rig floor so as to maintain the bottom hole pressure. Several methods have been developed to achieve the dual gradient drilling principle. For this research project, we paid more attention to the liquid lift, dual gradient drilling (riser dilution method). This method of achieving dual gradient drilling was somewhat different from the others, because it does not utilize elaborate equipment and no major changes are made on the existing drilling rigs. In this thesis the technical feasibility of using the liquid lift method over the other methods of achieving dual gradient drilling was determined. A computer program was developed to simulate the wellbore hydraulics under static and dynamic conditions, injection rate and base fluid density required to dilute the riser fluid and finally, u-tubing phenomena. In this thesis we also identified some problems associated with the liquid lift method and recommendations were made on how these problems can be eliminated or reduced. Emphases were placed on the effect of u-tubing, injection rate of base fluid at the bottom of the riser and well control issues facing this system.
机译:过去,石油和天然气行业通常使用单梯度系统在海上钻井。使用该系统,井底压力由泥浆柱控制,泥浆柱从钻机延伸至井眼底部。该泥浆塔用于达到所需的井底压力。但是,随着对石油和天然气的需求增加,该行业开始探索深海中的石油和天然气。由于孔隙压力和裂缝压力之间的裕度狭窄,因此使用单个梯度系统很难达到总深度。这导致了双重梯度系统的发明。在双梯度法中,高密度流体从井底流向泥线,低密度流体从井眼流向钻机底板,以维持井底压力。已经开发了几种方法来实现双重梯度钻井原理。对于此研究项目,我们更加关注液体提升,双重梯度钻井(上升稀释法)。这种实现双坡度钻探的方法与其他方法有些不同,因为它不使用复杂的设备,并且对现有钻机也没有进行重大更改。本文确定了采用液体举升法而不是实现双梯度钻探的其他方法的技术可行性。开发了一个计算机程序来模拟在静态和动态条件下的井眼水力学,注入速率和稀释立管流体所需的基础流体密度,最后模拟U型管现象。在本文中,我们还发现了与液体提升方法相关的一些问题,并就如何消除或减少这些问题提出了建议。重点放在U型管的效果,立管底部的基础流体的注入速率以及该系统面临的井控问题上。

著录项

  • 作者

    Okafor Ugochukwu Nnamdi;

  • 作者单位
  • 年度 2008
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  • 原文格式 PDF
  • 正文语种 en_US
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