实时三维超深定向电磁随钻测井反演:一种创新的地质导向和测绘亚地震断层周围水滑塌运动的方法

Maniesh Singh, Parmanand Dhermeshwar Thakur, Mariam N. M. Al Baloushi, Haitham Ali Al Saadi, Maisoon M. Al Mansoori, Ahmed S. Al Mesafri, S. Al Arfi, Vikram K. Pandey, Alaa Al Shalabi, F. Maire, Ernesto L. Barragan Chang, Maher M. Kenawy, Mouza Ali Al Nuaimi, Douglas Boyd, Nader Gerges, W. Fares, E. Bikchandaev, N. Clegg, A. Walmsley, A. Aki
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引用次数: 0

摘要

超深定向电磁LWD电阻率(UDDE)工具应用于成熟的下白垩统碳酸盐岩储层,以绘制注水运动图。在这些厚的碳酸盐岩储层中,注水优先在储层顶部横向流动。负毛细力作用下,油上方的水迅速下降,导致含水率增加,最终扼杀自然举升水平生产井。实时3D和1D反演提供了非均匀水面和油藏边界的重要精确映射,提供了对油藏结构和水运动的深入了解。该候选井位于流体分布和亚地震断层等构造元素具有重大不确定性的区域。井前一维反演结果表明,可以在60-100 ft TVD的垂直半径范围内绘制出远离井筒的水滑塌前缘。然而,由于断层的存在,在陡峭倾斜或不连续地层存在的情况下,一维反演并不准确,预计会影响井位、绘制水前缘/地层边界和长期采收率。因此,实时运行超深电磁数据的全3D和1D反演,在这种复杂的几何环境中提供高质量的储层成像,并提供改进的储层流体分布和结构映射。井前反演建模优化了UDDE工具的频率和收发间距。底部钻具组合(BHA)配置还包括传统的随钻测井工具,如中子密度、传播电阻率和伽马射线。利用50英尺至120英尺深度的不同反演深度,对多个三维反演数据集进行实时处理。使用小井眼(4¾″)工具,实时钻井过程中的三维反演结果检测到不均匀的滨水边界和井筒上方80英尺TVD处的水倾降。绘制了一条解释的次地震下倾断层,该断层控制了不均匀的滑塌流体分布,使该位置的水前缘最接近井筒。这表明断裂带是开放的,并且在断层平面周围提供了一定程度的渗透率增加。实时三维反演、一维浅反演和一维深反演结果虽然相互独立反演,但结构成像具有可比性。这些结果可以更新静态/动态油藏模型,并优化完井设计,以延迟水侵,从而在更长的时间内维持石油生产。UDDE工具及其先进技术在现场的广泛应用,改进了1D和3D反演结果,将提高具有挑战性的水滑塌前缘和结构变化的油藏模型的实时地质导向、测绘和更新的质量。这将有助于改善井位和井距,并最终实现智能完井的主动设计,以提高石油产量和采收率。
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Real-Time 3D Ultra Deep Directional Electromagnetic LWD Inversions: An Innovative Approach for Geosteering and Geomapping Water Slumping Movement Around Sub-Seismic Fault, Onshore Abu Dhabi
An Ultra-Deep Directional Electromagnetic LWD Resistivity (UDDE) tool was deployed in a mature Lower Cretaceous carbonate reservoir to map injection water movement. These thick carbonate reservoirs experience injection water preferentially travelling laterally at the top of the reservoir. The water held above oil by negative capillary forces slumps quickly, leading to increasing water cut, eventually killing the natural lift horizontal producing well. Real time 3D and 1D inversions provided important accurate mapping of the non-uniform water fronts and reservoir boundaries, providing insights into reservoir architecture and water movement. The candidate well is located in an area of significant uncertainty regarding fluid distribution and structural elements like sub-seismic faults etc. Pre-well 1D inversion results indicated that the water slumping front away from wellbore can be mapped within a vertical radius of 60-100 ft TVD. However, 1D inversion is not accurate where steeply dipping or discontinuous formations exist due to the presence of faults and is expected to impact well placement, mapping water fronts / formation boundaries and long-term oil recovery. Therefore in the real time, full 3D and 1D inversions of the Ultra-Deep EM data were run to provide high quality reservoir imaging in this complex geometrical setting and deliver improved reservoir fluid distribution and structure mapping. The pre-well inversion modeling optimized the frequency and transmitter-receiver spacing of the UDDE tool. The bottom hole assembly (BHA) configuration also included conventional LWD tools such as Neutron-Density, propagation Resistivity and Gamma Ray. Multiple 3D inversion datasets were processed in real-time using different depths of inversion ranging from 50 ft up to 120 ft depth. The 3D inversion results during the real-time drilling operation detected the non-uniform waterfront boundaries and water slumping up to 80 ft TVD above the wellbore using a slimhole (4¾″) tool. An interpreted sub-seismic down-thrown fault was mapped which controlled the non-uniform slumping fluid distribution, causing the water front to approach closest to the wellbore in this location. This suggests that the fault zone is open and provides a degree of increased permeability around the plane of the fault. The real-time 3D inversion, 1D shallow and 1D deep inversion results showed comparable structural imaging despite being inverted independently of each other. These results permitted updates to the static / dynamic reservoir models and an optimization of the completion design, to delay the water influx and thereby sustain oil production for a longer period of time. Field wide implementation of the UDDE tool and its advanced technology with improved 1D and 3D inversion results will enhance the quality of realtime geosteering, mapping and updating of reservoir models which have challenging water slumping fronts and structural variations. This will enable improvment in well locations, their spacing and finally allowing the proactive design of smart completions for enhanced oil production and improved recovery factors.
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