先进的超深电阻率成像传感器降低了储层的不确定性,首次消除了先导井的需求;以阿布扎比为例

W. Fares, I. Moustafa, A. A. Al Felasi, H. Khemissa, O. A. Al Mutwali, F. Gutierrez, N. Clegg, A. Duriez, A. Aki
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引用次数: 0

摘要

由于流体横向分布,储层不确定性高,导致含水饱和度变化,这给水平井钻井带来了很大的挑战。为了减少不确定性,该计划是钻一个先导孔来评估目标区域,并根据获得的信息规划水平段。为了研究未来避免导孔的可能性,研究人员部署了先进的超深电阻率成像传感器来绘制成熟储层图,在穿透地层和流体边界之前尽早识别它们,从而避免了导孔的需要。进行了井前反演建模,以优化间隔和发射频率选择,并促进早期实时地质停止决策。该计划是在钻井8 - 1 / 2英寸时,将超深电阻率测绘传感器与浅层传播电阻率、密度和中子孔隙度工具结合使用。着陆区。实时超深电阻率成像反演使用的反演深度可达120英尺,以便能够及早发现储层并评估预测的储层电阻率。这将允许优化任何地质停止决策。在极具挑战性的低电阻率环境中,超深电阻率测绘传感器可在距井筒85ft . TVD的低电阻率区域进行精确测绘。实时超深电阻率成像反演能够在进入储层之前预测目标层的电阻率值;这些值随后与裸眼测井交叉核对以验证。结果可以确定8 - 1 / 2 -in井段的最佳地质停止点。部分,通过消除导孔,未来最多可节省7个钻井天。此外,这将消除在大倾角下设置斜向器的风险,从而避免后续对铣削作业的影响。在特定情况下,通过提高对地层顶部的早期检测,可以将未知/高油藏压力区的钻井风险降至最低。由于这些结果提供了信心,因此修改了附近未来井的计划,并取消了先导井阶段。在这些成熟的碳酸盐岩储层中部署超深电阻率测图传感器可以减少与流体运移相关的不确定性。此外,使用该工具可以实现精确的地质导向,以保持与厚储层流体边界的距离。此外,由于这些工具可以进行深度调查,它将有助于绘制附近储层的地图,以供未来开发使用。进一步的多学科研究仍然是可取的,利用现有的标准测井数据来验证这一概念在不同油田和油藏中的有效性。
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An Advanced Ultra-Deep Resistivity Mapping Sensor Reduced Reservoir Uncertainty and Eliminated the Need for a Pilot Hole for the First Time; A Case Study from Offshore Abu Dhabi
The high reservoir uncertainty, due to the lateral distribution of fluids, results in variable water saturation, which is very challenging in drilling horizontal wells. In order to reduce uncertainty, the plan was to drill a pilot hole to evaluate the target zones and plan horizontal sections based on the information gained. To investigate the possibility of avoiding pilot holes in the future, an advanced ultra-deep resistivity mapping sensor was deployed to map the mature reservoirs, to identify formation and fluid boundaries early before penetrating them, avoiding the need for pilot holes. Prewell inversion modeling was conducted to optimize the spacing and firing frequency selection and to facilitate an early real-time geostopping decision. The plan was to run the ultra-deep resistivity mapping sensor in conjunction with shallow propagation resistivity, density, and neutron porosity tools while drilling the 8 ½-in. landing section. The real-time ultra-deep resistivity mapping inversion was run using a depth of inversion up to 120 ft., to be able to detect the reservoir early and evaluate the predicted reservoir resistivity. This would allow optimization of any geostopping decision. The ultra-deep resistivity mapping sensor delivered accurate mapping of low resistivity zones up to 85 ft. TVD away from the wellbore in a challenging low resistivity environment. The real-time ultra-deep resistivity mapping inversion enabled the prediction of resistivity values in target zones prior to entering the reservoir; values which were later crosschecked against open-hole logs for validation. The results enabled identification of the optimal geostopping point in the 8 ½-in. section, enabling up to seven rig days to be saved in the future by eliminating a pilot hole. In addition this would eliminate the risk of setting a whipstock at high inclination with the subsequent impact on milling operations. In specific cases, this minimizes drilling risks in unknown/high reservoir pressure zones by improving early detection of formation tops. Plans were modified for a nearby future well and the pilot-hole phase was eliminated because of the confidence provided by these results. Deployment of the ultra-deep resistivity mapping sensor in these mature carbonate reservoirs may reduce the uncertainty associated with fluid migration. In addition, use of the tool can facilitate precise geosteering to maintain distance from fluid boundaries in thick reservoirs. Furthermore, due to the depths of investigation possible with these tools, it will help enable the mapping of nearby reservoirs for future development. Further multi-disciplinary studies remain desirable using existing standard log data to validate the effectiveness of this concept for different fields and reservoirs.
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