在位环视三维反演;利用创新型近位超深方位电阻率传感器实现关键里程碑

A. Elkhamry, A. A. Maimani, M. Fouda, A. Taher
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摘要

高效的油井布局在很大程度上取决于早期的地质导向决策,以最大限度地扩大储层接触面。在高度起伏的薄目标区,由于地层倾角的突然变化,这一点可能更令人担忧。在这样的环境中,地质测绘仪器被放置在井底组件中钻头后面较远的位置,从而导致相对较晚的决策制定和更积极的井道修正,这是一个巨大的挑战。本文介绍了将地球物理测绘工具放置在靠近钻头位置的优势,这样可以增强与储层的接触(净对总),减少井眼的曲折。深层和超深层方位角电阻率测量为主动地质导向提供了历史性的变革,但与其他不太先进的近钻头传感器相比,传感器靠近钻头一直是个难题。为了确保最大限度地暴露储层,我们经常使用传统配置的井位,但由于地层倾角(一维环境)、横向边界(二维环境)或通道(三维环境)等不可预见的地质结构变化,结果各不相同。我们引入了一种新的工具设计,将超深电阻率发射器嵌入旋转转向系统,使一维和三维反演最接近钻头位置,提供储层的钻头可视化,从而可以更早、更少地修正井道,优化井位,增加储层接触。在使用近钻头超深方位电阻率反演钻取高角度断面的同时绘制地层边界地质图,最大限度地减少了潜在的储层出口,同时也最大限度地减少了井筒迂回。这对于高效布井、降低钻井风险和顺利完井部署至关重要。水平井布置在薄储层目标中,通过整合一维和三维反演,成功地解决了这些问题,从而改善了储层绘图、远程岩性和流体识别,优化了井位布置和储层评估。钻井过程中的其他测井测量,如来自多个传感器的三重组合和方位角图像,验证了近位电阻率反演的储层可视化精度。本文介绍了全球首次利用嵌入在旋转转向系统中的超深电阻率传感器进行的井位环视反演,该系统用于两个目标砂层的水平井布井。由于超深传感器距离钻头很近,因此能够更快地做出决策,以最佳方式将油井放置在目标区域,同时减少油井迂回,从而获得更高的净/毛比和更平滑的油井轨迹。这也为完井设备的部署提供了便利,节省了昂贵的钻机时间。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
At-The-Bit Look-Around 3D Inversion; Key Milestone Achieved with Innovative Close to the Bit Ultra-Deep Azimuthal Resistivity Sensors
Efficient well placement profoundly depends on early geo-steering decisions to maximize reservoir contact. In highly undulated thin target zones, this can be more concerning as the formation dip changes abruptly. Such environments present a significant challenge where geo-mapping instruments are placed farther behind the bit in the bottom hole assembly, leading to relatively late decision making and more aggressive well path corrections. This paper presents the advantages of placing geo-mapping tools close to the drilling bit position leading to enhanced reservoir contact (Net-to-Gross) and less tortuous well bores. Deep and ultra-deep azimuthal resistivity measurements have historically provided a step change for proactive geo-steering, yet the challenge has always been the proximity of the sensors to the bit opposed to other less sophisticated near bit sensors. Well placement with conventional configurations have been regularly utilized to ensure maximum reservoir exposure with varying results due to unforeseen geo-structural changes such as the formation dipping regime (1D environment), lateral boundaries (2D environment) or channels (3D environment). A new tool design was introduced in which the ultra-deep resistivity transmitter was embedded into the rotary steerable system allowing 1D and 3D inversions to be closest to the bit position, offering at-the-bit visualization of the reservoir, hence, earlier, and less aggressive well path corrections could be made to optimize well placement and increase reservoir contact. Geo-mapping formation boundaries while drilling high angle sections with a near bit ultra-deep azimuthal resistivity inversion minimized potential reservoir exits while also minimizing wellbore tortuosity. This is critical for efficient well placement, minimizing drilling risks and smooth completions deployment. Horizontal wells were placed in thin reservoir targets that are successfully resolved by integrating 1D and 3D inversions to improve reservoir mapping, remote lithology and fluid identification to optimize well placement and reservoir evaluation. The accuracy of reservoir visualization from the near-bit resistivity inversion has been validated by other logging while drilling measurements in the drill string, such as triple combo and azimuthal images from several sensors. This paper presents the global first at-the-bit look-around inversion utilizing an ultra-deep resistivity sensor embedded in a rotary steerable system for horizontal well placement in two target sand packages. The proximity of the ultra-deep sensor to the bit enabled quicker decisions to optimally place the well in the target zone while reducing well tortuosity leading to a higher net-to-gross and a smoother well trajectory. This also facilitated the deployment of the completion equipment saving costly rig time.
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