首页> 外文期刊>Petrophysics: The SPWLA Journal of Formation Evaluation and Reservoir Description >Automated Interpretation for LWD Propagation Resistivity Tools Through Integrated Model Selection
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Automated Interpretation for LWD Propagation Resistivity Tools Through Integrated Model Selection

机译:通过集成模型选择来自动解释随钻测井传播电阻率工具

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摘要

Petrophysicists often have difficulty interpreting logs from today's multispacing, multi frequency logging-while-drilling (LWD) propagation resistivity tools. Which of the many resistivity curves represents the true formation resistivity? The logs may be affected to varying degrees by borehole effect, tool eccentering, shoulder-bed effects, fractures, invasion, anisotropy and/or dielectric effects. These effects may occur individually, or multiple effects may be present in the same zone. Identifying these effects and correcting for them is challenging, especially when conclusions are needed quickly. Much of the information required to answer these questions is contained in the array measurements themselves. This paper presents a general automated scheme that can help analysts to identify environmental effects and to select the appropriate environmentally corrected formation resistivity. It answers the key question of how to select the correct model amongst many candidates, based primarily on inversion of the tool response and possibly other additional information. The key idea is to invert different formation models that may apply and select the one most consistent with the measurements of the tool and with auxiliary data from user inputs and/or other logs. When a dominant effect is identified, the correction is applied automatically, the relevant environmentally corrected data are generated, and confidence of interpretation is assigned. When none of the models result in an adequate fit, the data are flagged to indicate that an automatic interpretation could not be made because of more complicated or compounded environmental effects. In addition, petrophysicists can accept or reject certain models and impose petrophysical constraints to improve the interpretation. The program based on this approach has been used to process field logs with diverse formation characteristics, and it has been evaluated by experienced petrophysicists. The program includes borehole, invasion, dielectric, and anisotropy models in its model-base. Results show that the algorithm successfully identifies most environmental effects and highlights zones that need further analysis because of complex or compounded effects. The benefits of such an integrated-interpretation-through-model-selection approach will be demonstrated through four field log examples. Availability of these results at the wellsite is expected to improve both the timeliness and the quality of decisions made based on resistivity data.
机译:岩石物理学家通常很难从当今的多间隔,多频率随钻测井(LWD)传播电阻率工具解释测井结果。许多电阻率曲线中的哪一条代表真实的地层电阻率?井眼效应,工具偏心,台肩床效应,裂缝,侵入,各向异性和/或介电效应可能会对测井产生不同程度的影响。这些效果可以单独发生,也可以在同一区域中出现多种效果。识别这些影响并对其进行纠正具有挑战性,尤其是在需要快速得出结论时。回答这些问题所需的许多信息都包含在阵列测量本身中。本文提出了一种通用的自动化方案,可以帮助分析人员识别环境影响并选择适当的环境校正地层电阻率。它主要基于工具响应的反转以及可能的其他附加信息,回答了如何在众多候选对象中选择正确模型的关键问题。关键思想是反转不同的地层模型,这些模型可以应用并选择与工具的测量以及来自用户输入和/或其他日志的辅助数据最一致的模型。当识别出主要影响时,将自动应用校正,生成相关的环境校正数据,并分配解释的可信度。如果没有一个模型能提供足够的拟合度,则会标记数据以指示由于更复杂或更复杂的环境影响而无法进行自动解释。此外,岩石物理学家可以接受或拒绝某些模型,并施加岩石物理约束以改善解释。基于此方法的程序已用于处理具有多种地层特征的现场测井,并且已由经验丰富的岩石物理学家进行了评估。该程序在其模型库中包括井眼,侵入,介电和各向异性模型。结果表明,该算法成功识别了大多数环境影响,并突出显示了由于复杂或复合影响而需要进一步分析的区域。这种通过模型进行综合解释的方法的好处将通过四个现场日志示例进行演示。预期在井场获得这些结果将改善基于电阻率数据的及时性和决策质量。

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