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首页> 外文期刊>Petrophysics: The SPWLA Journal of Formation Evaluation and Reservoir Description >High Resolution Visualization of Near Wellbore Geology using While-Drilling Electrical Images
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High Resolution Visualization of Near Wellbore Geology using While-Drilling Electrical Images

机译:使用随钻电图像高分辨率可视化近井眼地质

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摘要

Electrical borehole images offer a unique view of the subsurface to geologists and petrophysicists. Images from wireline electrical imaging tools are readily interpreted in terms of key geological characteristics such as structural and stratigraphic features of the formation. Today, advances in logging-while-drilling (LWD) technology allow high-resolution electrical imaging to be successfully applied in water-base mud drilling environments. Key acquisition advantages for imaging-while-drilling include a better shaped borehole at the time of drilling and 100 percent circumferential borehole coverage (unlike the pad coverage of currently available wireline resistivity imagers). An important advantage is the opportunity for real-time decision making and related rig-time savings. linages sent to the surface, albeit limited in definition given telemetry restrictions, give an early indication of the angle of entry into a given formation and allow for more accurate/precise geosteering. We present field test results of a new high resolution, electrical borehole imaging-while-drilling tool. We demonstrate its field worthiness and show examples of the quality and accuracy of the images in conductive mud. In a series of controlled runs we have compared the response of the "while-drilling" tool with its wireline counterpart and with core. We show that the "while-drilling" images are comparable to the wireline images. In addition, a greater understanding of the geological features is possible because of their full circumferential coverage. Electrical images recorded while drilling show clear occurrences of laminated and disturbed mud rock, cross-bedded and bioturbated sandstone, and composite fractures as well as fracture swarms. This new LWD instrument has been quality-assured through mathematical and experimental modeling. In a laboratory setup, we have simulated the logging of a set of artificial formations with known dip, rugosity, fractures and different mud resistivities. Good agreement is obtained between the mathematical and experimental models. The electrical diameter for the LWD instrument is comparable to that of wireline electrical imaging tools.
机译:电钻孔图像为地质学家和岩石物理学家提供了地下的独特视角。根据关键的地质特征(例如地层的结构和地层特征),很容易解释来自电缆电成像工具的图像。如今,随钻测井(LWD)技术的进步使高分辨率电成像技术可以成功地应用于水基泥浆钻井环境中。随钻成像的主要采集优势包括钻探时井形更好的井眼和100%的周向井眼覆盖率(与当前可用的电缆电阻率成像仪的井盖覆盖率不同)。一个重要的优势是有机会进行实时决策并节省相关的钻机时间。尽管受到遥测限制的限制,但发送到地面的线性滑行尽早指示了进入给定地层的进入角度,并允许进行更准确/更精确的地质导向。我们介绍了一种新型的高分辨率电随钻成像工具的现场测试结果。我们展示了其现场价值,并展示了导电泥中图像质量和准确性的示例。在一系列受控运行中,我们将“随钻”工具与电缆对应工具和岩心的响应进行了比较。我们显示“随钻”图像与有线图像相当。此外,由于它们的整个周向覆盖范围,因此可以更好地了解地质特征。随钻记录的电图像清楚地显示了层状和扰动的泥岩,交叉层状和生物扰动的砂岩,复合裂缝以及裂缝群的发生。这款新的随钻测井仪已通过数学和实验建模得到了质量保证。在实验室设置中,我们模拟了一组具有已知倾角,皱纹,裂缝和不同泥浆电阻率的人工地层的测井。数学模型和实验模型之间取得了良好的一致性。 LWD仪器的电直径可与有线电成像工具的电直径相媲美。

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