首页> 外文期刊>Fractals: An interdisciplinary journal on the complex geometry of nature >NUMERICAL STUDY OF PORE STRUCTURE EFFECTS ON ACOUSTIC LOGGING DATA IN THE BOREHOLE ENVIRONMENT
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NUMERICAL STUDY OF PORE STRUCTURE EFFECTS ON ACOUSTIC LOGGING DATA IN THE BOREHOLE ENVIRONMENT

机译:孔隙结构对钻孔环境中声学测井数据的影响数值研究

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摘要

Existing methods of well-logging interpretation often contain errors in the exploration and evaluation of carbonate reservoirs due to the complex pore structures. The differences in frequency ranges and measurement methods deviated between the acoustic well logs and indoor ultrasonic tests cause inconsistent results. Based on the elastic wave equation and the principle of the control variable method, a 2D axisynunetric borehole model with complex pore structures was developed, and the numerical simulation method for acoustic log was constructed. The modeling results show that the power function can well describe the effects of pore structure on the acoustic waves, while the velocity of the Stoneley wave is not sensitive to the pore structure. Crack-like pores with pore aspect ratio (AR) less than 0.1 significantly affect the velocities of P- and S-waves, whereas "spherical" pores have fewer effects. The models with larger pore sizes have high velocities of P- and S-waves. The velocities calculated by the equivalent medium theory are always higher than the numerical simulation results. The velocity deviation caused by the difference in frequency is much smaller than the pore structure. A fractal approach to quantify the effects of pore structures is applied in the acoustic logging data. The fractal dimension increases with the pore AR or size when the porosity is constant, which can be described by a simple power function. This gives us new ideas and methods for pore structure evaluation in the lower frequency range than the conventional petrophysical model.
机译:由于复杂的孔隙结构,现有的良好测井解释方法通常包含探测和评估碳酸盐储层的误差。频率范围和测量方法的差异偏离在声学井日志和室内超声波测试之间导致结果不一致。基于弹性波方程和控制变量方法的原理,开发了一种具有复杂孔结构的2D轴静脉钻孔模型,构建了声学对数的数值模拟方法。建模结果表明,功率功能可以很好地描述孔结构对声波的影响,而STONELEY波的速度对孔结构不敏感。具有孔纵横比(AR)的裂缝状孔小于0.1显着影响P-和S波的速度,而“球形”孔隙效果较少。孔径较大的型号具有高速度的P-和S波的速度。由等效介质理论计算的速度总是高于数值模拟结果。频率差异引起的速度偏差远小于孔结构。用于量化孔结构效果的分形方法应用于声学测井数据。当孔隙率恒定时,分形尺寸随孔隙或尺寸而增加,这可以通过简单的功率功能来描述。这为我们提供了比传统岩石物理模型在较低频率范围内的孔结构评估的新思路和方法。

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