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ADVANCEMENTS IN ACOUSTIC TECHNIQUES FOR EVALUATING OPEN NATURAL FRACTURES

机译:用于评估开放自然骨折的声学技术的进步

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Open natural fractures, when present, can provide the conduit for the majority of natural gas in low porosity, hard-rock environments. Therefore, a complete understanding of fracture attributes, including aperture and permeability, is required for optimal production as well as cementing and completion design, well placement and reservoir modeling. Sonic Scanner*, the latest of a new generation of waveform sonic acquisition tools with its 13 axial receivers, can provide a Stoneley measurement with improved broadband frequency response, higher waveform fidelity and increased energy. Stoneley reflectivity is minimal for high angle fractures so the energy loss or attenuation of the waveforms is required to evaluate their permeability. The lower end of the frequency response reaches 300 Hz, which significantly improves the detection of highly dipping fractures using existing techniques such as normalized differential energies (NDE). The improved Stoneley measurement is critical when trying to distinguish between drilling induced fractures and open natural fractures. For cases where both sets of fractures are striking in-line with the present day stress field and dipping at high angles, Stoneley reflections may be very small or absent. An attenuation technique such as NDE proves to be the optimal way to evaluate fracture aperture and permeability. Slowness frequency analysis (SFA) of the rotated dipole flexural dispersion curves can also be used to identify open natural fractures. SFA is a projection of the flexural wave frequency and amplitude profile on the slowness plane at each depth. The traditional STC (Slowness Time Coherence) or semblance processed shear slownesses are compared with the SFA projection to confirm that the waveforms processing is consistent with the frequency content. The amplitude and frequency information provides an image of the shear characteristics of the formation from the face of the well bore extending several feet into the formation. Variations in the signal strength and frequency content are evident when examining naturally fractured zones. Comparisons of the SFA projection with the Stoneley NDE provide a 3-dimensional acoustic characterization of the formation identifying fractures and borehole stress regimes. A case study is presented using the latest generation Stoneley measurements, SFA projection images and micro-resistivity images. The additional acoustic information compared with the resistivity image data provides a much clearer and powerful characterization of the formation for identifying open natural fractures.
机译:在现有时,打开自然骨折可以为大多数天然气,低孔隙度,硬岩环境提供导管。因此,对于最佳生产以及粘合和完井设计,井放置和储层建模,需要完全了解骨折属性,包括光圈和渗透性。 Sonic Sc​​anner *,最新一代的波形Sonic采集工具与其13轴高接收器,可以提供宽带频率响应,更高波形保真度和增加的能量的Stoneley测量。高角度骨折的Stoneley反射率最小,因此需要波形的能量损失或衰减来评估它们的渗透性。频率响应的下端达到300Hz,这显着改善了使用诸如归一化差分能量(NDE)的现有技术的高浸渍骨折的检测。当试图区分钻孔诱导的骨折和开放自然骨折时,改善的stoneley测量是至关重要的。对于两组骨折与本日应力场直接引起的案例,并且在高角度下浸渍,Stoneley反射可能非常小或不存在。诸如NDE的衰减技术被证明是评估骨折孔径和渗透性的最佳方式。旋转偶极弯曲分散曲线的缓慢频率分析(SFA)也可用于识别开放的自然骨折。 SFA是在每个深度处的抗衰减平面上的弯曲波频率和幅度曲线的投影。与SFA投影进行比较传统的STC(缓慢时间一致性)或类似的STC处理剪切慢化,以确认波形处理与频率内容一致。幅度和频率信息提供从孔孔的面部延伸几英尺到形成的孔的剪切特性的图像。当检查天然骨折区域时,信号强度和频率内容的变化是显而易见的。 SFA投影与Stoneley NDE的比较提供了鉴定骨折和钻孔胁迫制度的形成的三维声学表征。使用最新一代Stoneley测量,SFA投影图像和微电阻率图像来提出案例研究。与电阻率图像数据相比的附加声信息提供了更清晰,强大的表征,用于识别开放的自然裂缝。

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