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Combining MWD Ranging Technology and Gyro While Drilling (GWD) In High Inclination Wellbores Deliver Reduced Drilling Costs and Complexity without Compromising Safety

机译:在高倾角井筒中钻孔(GWD)结合MWD测距技术和陀螺仪在高倾斜井中提供降低的钻井成本和复杂性而不会损害安全性

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The uncertainties associated with current wellbore surveying techniques can generate time consuming challenges when sidetracking around a fish at high inclinations. If the sidetrack is not planned with a significant safety margin and/or the bottom hole assembly does not include the proper amount of non-magnetic spacing then the MWD surveys of the sidetrack wellbore can be compromised significantly by external magnetic interference leaving the well to be drilled blind. One means of monitoring the approach between a drilling well and a secondary wellbore has been to use the MWD sensors to monitor for external magnetic interference. When monitoring the convergence of two wellbores in a close approach situation, the relative positions between the wells must be calculated. However, calculating the relative position between wells is a challenge when the inclination of the two wellbores exceeds 80 degrees. This method increases safety while drilling. Using gyro while drilling eliminates the need to run wire line conveyed gyros, saving considerable expense. Gyro while drilling (GWD) allows data to be collected frequently while the drilling progresses, minimizing the risk of intercepting the fish without slowing the drilling process. Equally it is possible to be flexible in sidetrack trajectories as any attitude is available. There is no longer a need to steer by inclination only, improving efficiency in drilling operations. This paper looks at a case study where a passive MWD ranging method uses both the output of the magnetic sensors from the MWD and the directional information calculated from an all attitude gyro while drilling tool. This allows the calculation of the spatial relationship (distance and direction), between the drilling well and the fish, at 90 degrees of inclination. As the drilling sidetrack and the fish are at 90 degrees inclination and the two wellbores are not parallel, a high inclination gyro must be used to calculate the azimuth required for passive ranging calculations. Since an electromagnetic target cannot be placed in the original hole, only a single entry ranging technique can be used. This tool combination allows the positional relationship between the drilling well and the fish to be continuously monitored until the collision risk has passed.
机译:与当前井筒测量技术相关的不确定性可以在高倾斜度周围侧身时产生耗时的挑战。如果没有计划具有显着的安全缘和/或底部孔组件不包括适量的非磁性间距,则通过外部磁干扰留下井的外部磁干扰,可以显着地损害MWD调查。离开井钻孔盲目。一种监测钻井井和辅助井之间的方法的一种方法是使用MWD传感器来监测外部磁干扰。当在近视情况下监视两个井筒的收敛时,必须计算孔之间的相对位置。然而,计算井之间的相对位置是当两个井筒超过80度的倾斜时是一个挑战。该方法在钻孔时增加安全性。使用陀螺仪在钻孔时消除了运行线路传达的陀螺仪,节省了相当大的费用。钻孔(GWD)允许钻孔钻头钻探的数据虽然在钻井进展情况下频繁收集数据,但最大限度地减少在不放缓钻井过程的情况下拦截鱼的风险。同样,随着任何态度都有任何态度,可以在侧面轨迹中灵活。不再需要通过倾斜来转向,提高钻井操作的效率。本文研究了一种案例研究,其中无源MWD测距方法使用MWD的磁传感器的输出和钻孔工具的所有姿态陀螺从所有姿态计算的方向信息。这允许在90度倾斜度之间计算钻井井和鱼之间的空间关系(距离和方向)。由于钻孔侧面和鱼在90度倾斜并且两个井筒不平行,必须使用高倾斜陀螺仪来计算被动测距计算所需的方位角。由于电磁靶不能放置在原始孔中,因此可以仅使用单个入口测距技术。该工具组合允许在碰撞风险通过之前钻井井和鱼之间的位置关系。

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