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首页> 外文期刊>Geophysics: Journal of the Society of Exploration Geophysicists >Anisotropic geometrical-spreading correction for wide-azimuth P-wave reflections
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Anisotropic geometrical-spreading correction for wide-azimuth P-wave reflections

机译:广角P波反射的各向异性几何扩展校正

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摘要

Compensation for geometrical spreading along a raypath is one of the key steps in AVO (amplitude-variation-with-offset) analysis, in particular, for wide-azimuth surveys. Here, we propose an efficient methodology to correct long-spread, wide-azimuth reflection data for geometrical spreading in stratified azimuthally anisotropic media. The P-wave geometrical-spreading factor is expressed through the reflection traveltime described by a nonhyperbolic moveout equation that has the same form as in VTI (transversely isotropic with a vertical symmetry axis) media. The adapted VTI equation is parameterized by the normal-moveout (NMO) ellipse and the azimuthally varying anellipticity parameter eta(alpha). To estimate the moveout parameters, we apply a 3D nonhyperbolic semblance algorithm of Vasconcelos and Tsvankin that operates simultaneously with traces at all offsets and azimuths. The estimated moveout parameters are used as the input in our geometrical-spreading computation. Numerical tests for models composed of orthorhombic layers with strong, depth-varying velocity anisotropy confirm the high accuracy of our travetime-fitting procedure and, therefore, of the geometrical-spreading correction. Because our algorithm is based entirely on the kinematics of reflection arrivals, it can be incorporated readily into the processing flow of azimuthal AVO analysis. In combination with the nonhyperbolic moveout inversion, we apply our method to wide-azimuth P-wave data collected at the Weyburn field in Canada. The geometrical-spreading factor for the reflection from the top of the fractured reservoir is clearly influenced by azimuthal anisotropy in the overburden, which should cause distortions in the azimuthal AVO attributes. This case study confirms that the azimuthal variation of the geometrical-spreading factor often is comparable to or exceeds that of the reflection coefficient.
机译:沿光线路径的几何扩展的补偿是AVO(偏移幅度变化)分析中的关键步骤之一,尤其是对于宽方位角测量而言。在这里,我们提出了一种有效的方法来校正分层方位各向异性介质中几何扩展的长距离,宽方位角反射数据。 P波的几何扩展因子通过非双曲线时差方程描述的反射传播时间来表示,该方程具有与VTI(垂直对称轴的横向各向同性)介质相同的形式。调整后的VTI方程由法向运动(NMO)椭圆和方位变化的椭圆率参数etaα进行参数化。为了估计运动参数,我们应用了Vasconcelos和Tsvankin的3D非双曲相似度算法,该算法与所有偏移量和方位角的迹线同时运行。估计的运动参数被用作我们的几何扩展计算中的输入。由正交各向异性层组成的模型的数值测试具有很强的深度变化速度各向异性,证实了我们的travetime-fitting程序以及几何扩展校正的高精度。因为我们的算法完全基于反射到达的运动学,所以可以很容易地将其合并到方位AVO分析的处理流程中。与非双曲线时差反演相结合,我们将我们的方法应用于在加拿大Weyburn油田采集的广角P波数据。从裂缝性储层顶部反射的几何扩展因子显然受覆盖层方位各向异性的影响,这将导致方位AVO属性变形。该案例研究证实,几何扩展因子的方位角变化通常可与反射系数相当或超过反射系数。

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