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Detection of formation boundaries and permeable fractures based on frequency-domain Stoneley wave logs

机译:基于频域斯通利波测井的地层边界和渗透性裂缝检测

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This paper describes a method of detecting formation boundaries, and permeable fractures, from frequency-domain Stoneley wave logs. Field data sets were collected between the depths of 330 and 360 m in well EE-4 in the Higashi-Hachimantai geothermal field, using a monopole acoustic logging tool with a source central frequency of 15 kHz. Stoneley wave amplitude spectra were calculated by performing a fast Fourier transform on the waveforms, and the spectra were then collected into a frequency-depth distribution of Stoneley wave amplitudes. The frequency-domain Stoneley wave log shows four main characteristic peaks at frequencies 6.5, 8.8, 12, and 13.3 kHz. The magnitudes of the Stoneley wave at these four frequencies are affected by formation properties. The Stoneley wave at higher frequencies (12 and 13.3 kHz) has higher amplitudes in hard formations than in soft formations, while the wave at lower frequencies (6.5 and 8.8 kHz) has higher amplitudes in soft formations than in hard formations. The correlation of the frequency-domain Stoneley wave log with the logs of lithology, degree of welding, and P-wave velocity is excellent, with all of them showing similar discontinuities at the depths of formation boundaries. It is obvious from these facts that the frequency-domain Stoneley wave log provides useful clues for detecting formation boundaries. The frequency-domain Stoneley wave logs are also applicable to the detection of a single permeable fracture. The procedure uses the Stoneley wave spectral amplitude logs at the four frequencies, and weighting functions. The optimally weighted sum of the four Stoneley wave spectral amplitudes becomes almost constant at all depths, except at the depth of a permeable fracture. The assumptions that underlie this procedure are that the energy of the Stoneley wave is conserved in continuous media, but that attenuation of the Stoneley wave may occur at a permeable fracture. This attenuation may take place at any one of the four characteristic Stoneley wave frequencies. We think our multispectral approach is the only reliable method for the detection of permeable fractures.
机译:本文介绍了一种从频域Stoneley波测井中检测地层边界和渗透裂缝的方法。使用源中心频率为15 kHz的单极声波测井仪,在东八H平地热田EE-4井的330至360 m深度之间收集了现场数据集。通过对波形执行快速傅立叶变换来计算斯通利波振幅谱,然后将光谱收集到斯通利波振幅的频率深度分布中。频域的斯通利波对数显示了在6.5、8.8、12和13.3 kHz频率处的四个主要特征峰。在这四个频率处的斯通利波的幅度受地层性质的影响。较高频率(12和13.3 kHz)的斯通利波在硬地层中的振幅要比软地层高,而较低频率(6.5和8.8 kHz)的波在软地层中的振幅要比硬地层高。频域的斯通利波测井曲线与岩性,焊接度和P波速度的测井曲线之间的相关性极好,所有这些都在地层边界深度处表现出相似的不连续性。从这些事实显而易见,频域的斯通利波测井为检测地层边界提供了有用的线索。频域的斯通利波测井也可用于探测单个渗透性裂缝。该程序使用四个频率处的斯通利波频谱幅度记录和加权函数。四个斯通利波谱振幅的最佳加权和在几乎所有深度都几乎恒定,除了可渗透裂缝的深度。该程序的基础假设是,斯通利波的能量在连续介质中是守恒的,但斯通利波的衰减可能发生在渗透性裂缝处。这种衰减可能会在四个特征斯通利波频率中的任何一个处发生。我们认为我们的多光谱方法是检测渗透性裂缝的唯一可靠方法。

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