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High Technologies–New Opportunities for Horizontal Drilling on Jurassic Formations in Complex Conditions of HTHP and Narrow Safe Mud Window

机译:高科技 - 在侏罗纪形成的卧式钻井在HTHP和窄安全泥窗窗口中的侏罗纪形成的新机会

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The Yurkharovskoye oil and gas condensate field is one of the main asset of PJSC NOVATEK. Two of the three productive levels (Cenoman and Valangin) are in the active development phase. The Jurassic reservoir, which is characterized by complex geology, high formation pressure (gradient ~ 2.0MPa / 100m) and a low fracturing gradient (FG), is currently in the exploration phase. In 2017, drilling of the first exploration well with a depth of 4855 m with a horizontal ending with multistage formation fracturing in the Jurassic formation was successfully completed. Successful completion of the drilling allowed not only to obtain valuable geological information, but also to choose an approach to the construction of such wells in the future. Joint efforts of the field operator, drilling contractor and oilfield services company have developed a drilling system that included a full range of engineering solutions that ensure an efficient and accident-free well construction process: completion, directional drilling, bits, drilling fluids, geomechanics and managed pressure drilling (MPD). Previous experience in the construction of directional wells was associated with mud losses due to fracturing, blow outs and wellbore collapse. At the design planning stage, the well design was optimized, the completion system was developed, the formulations of high-density drilling muds with low rheology were selected, a choice of technologies was made and much more. Each stage of the well construction was worked out and a scheme of operative interaction between the parties was developed, which allowed timely correction of the work program based on an actual information. Even at the design planning stage geomechanical modeling allowed design optimization and choose a safe trajectory of the well, and its update, based on the actual information, allowed to reduce the risks. Specially for this well, the formulation of the hydrocarbon-based solution was developed, which, despite its high density, was distinguished by low rheological properties. An important aspect of the preparation was the selection of bottomhole assembly and drilling regimes, which, on the one hand, should ensure efficient drilling, and on the other, generate the smallest possible equivalent circulation density (ECD). The use of MPD technology has made possible to maintain the ECD and ESP (equivalent static pressure) at the same level and to compensate for the pressure fluctuations during circulation and movement of the drill string while trips. To select the BHA, a special program complex was used to simulate the dynamics of its behavior at the bottomhole. Logging tools at BHA provided important real-time information that was used to manage the drilling process and make operational decisions. The hybrid rotary steerable system (RSS) allowed to drill the well in the riskiest intervals with a minimum angle and to provide a high dog leg and hit the target. The completion system for multistage fracturing with swellable packers required preparation of the wellbore and planning of all the necessary operations in order not to initiate hydraulic fracturing, wellbore collapse and failure to reach the target depth. The project of NOVATEK-Yurkharovneftegaz is a bright example when modern technologies and effective interaction of participants allow successfully solving problems that were previously considered as difficult to implement and open new horizons for developing hard-to-reach deposits in extreme conditions. Successful experience gained during the project will ensure the efficient construction of wells in the field.
机译:Yurkharovskoye石油和天然气凝聚液是PJSC Novatek的主要资产之一。三个生产级别(Cenoman和valangin)中的两个是积极的开发阶段。侏罗纪储层,其特征在于复杂地质,高层压力(梯度〜2.0mpa / 100m)和低压裂梯度(FG)目前在勘探阶段。 2017年,钻探第一个勘探的深度为4855米,成功完成了侏罗纪形成中的多级形成压裂的水平结束。成功完成钻探不仅可以获得有价值的地质信息,而且还可以在未来选择这种井建设的方法。现场运营商,钻探承包商和油田服务公司的共同努力开发了一种钻井系统,包括全方位的工程解决方案,可确保无效和无故井施工过程:完成,定向钻孔,位,钻井液,地质力学和管理压力钻孔(MPD)。由于压裂,吹出和井眼坍塌,以前在方向井的建设方面与泥浆损失有关。在设计规划阶段,优化了井设计,开发了完井系统,选择了高流变学的高密度钻井泥浆的配方,制作了一种技术等等。井建设的每个阶段都已制定出来,并开发了各方之间的持续互动计划,这允许根据实际信息及时纠正工作计划。即使在设计规划阶段地质力学建模允许设计优化和选择井的安全轨迹,并根据实际信息,更新允许降低风险。特别是本良好的烃类溶液的制剂,尽管密度高,但是通过低流变性能而区分。准备的一个重要方面是选择底孔组件和钻井制度,一方面应确保有效钻孔,另一方面,产生最小的等效循环密度(ECD)。 MPD技术的使用使得可以在同一水平保持ECD和ESP(等效静压),并补偿沿着钻柱的循环和移动期间的压力波动。要选择BHA,使用特殊程序复合体来模拟其在底部的行为的动态。 BHA的日志记录工具提供了重要的实时信息,用于管理钻井过程并进行操作决策。混合旋转可转向系统(RSS)允许以最小的角度钻井最小的间隔,并提供高狗腿并击中目标。多级压裂的完成系统,可膨胀封装机需要准备井筒和规划所有必要的操作,以免启动液压压裂,井筒塌陷和未能达到目标深度。 Novatek-Yurkharovneftegaz项目是一个明亮的例子,当时的现代技术和参与者的有效互动允许成功解决以前被认为难以实施和开放新的视野的问题,以在极端条件下开发难以达到的存款。该项目期间获得的成功经验将确保现场井中的有效建设。

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