Wenhao Wang, Shengqing Li, Junxin Guo, Long Zhao, Shangjing Guo, Yuanda Su, Xiao-Ming Tang
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引用次数: 0
摘要
由于具有流体饱和多孔背景的排列断裂岩石的复杂结构特征,许多现有的单波衰减机制模型无法准确描述测量多波段 SV 波数据。此外,裂缝与背景之间的波致流体流动(FB-WIFF)和裂缝的弹性散射(ES)的耦合效应导致 SV 波的弹性响应模糊不清。利用 Biots 理论和混合边界约束,我们推导出了斜入射 SV 波作用下单笔形断裂散射问题的精确解。此外,我们还利用 Foldy 方案为一组排列整齐的断裂建立了理论模型。数值结果表明,FB-WIFF、断裂 ES 及其耦合效应是造成波的色散和衰减的主要原因。FB-WIFF 主要发生在低频地震勘探频段,而断裂面 ES 则取决于波长与断裂尺寸之间的关系。此外,我们通过与现有的内插近似模型和之前的实验测量结果进行比较,验证了我们的模型的准确性和有效性。这项工作的分析结果可以解释不同频段 SV 波实验数据的声学响应,并为断裂检测和表征提供理论支持。
Dispersion and attenuation characteristics of obliquely incident SV wave in a fluid-saturated porous rock containing aligned penny-shaped fractures
Owing to the complex structural characteristics of aligned fractured rocks with a fluid-saturated porous background, many existing single-wave attenuation mechanism models cannot accurately characterize measuring multiband SV wave data. Moreover, the coupled effect of wave-induced fluid flow between fractures and the background (FB-WIFF) and elastic scattering (ES) from the fractures leads to ambiguity in the elastic response of the SV wave. Using Biots theory and mixed boundary constraints, we derived exact solutions to the scattering problem for a single penny-shaped fracture with an oblique incident SV wave. Furthermore, we developed a theoretical model for a set of aligned fractures by using Foldy's scheme. The numerical results showed that the FB-WIFF, ES of fractures, and their coupling effects were mainly responsible for wave dispersion and attenuation. The FB-WIFF occurs primarily in the low-frequency seismic exploration frequency band, whereas the ES of the fracture surface depends on the relationship between the wavelength and fracture size. In addition, we validated the accuracy and effectiveness of our model by comparing it with an existing interpolation approximation model and previous experimental measurements. The analysis results of this work can explain the acoustic response of SV wave experimental data in different frequency bands and theoretically support fracture detection and characterization.