Verticalized Sonic Measurements in Deviated Wellbore for Accurate Velocity Modelling and Seismic Well Tie in Offshore Malaysia

Elijah Lip Heng How, A. Donald, P. Bettinelli, P. Chongrueanglap, Woi Loon Hooi, Anniza Ai Mei Soh
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Abstract

Vertical seismic profile (VSP) or checkshot surveys are useful measurements to obtain accurate time-depth pairs for time-depth conversion in seismic exploration. However, in deviated wells, the standard geometry correction for rig-source VSPs will not provide reliable time-depth profiles because of ray bending, anisotropy, and lateral velocity variation effects. The accuracy of the time-depth profile can be improved by using model-based correction or vertical incidence VSP simulation with transversely isotropic (TI) data from an advanced sonic measurement. Elastic anisotropy parameters derived from sonic combined with VSP time-depth information are shown to accurately place a deviated wellbore within the reservoir to improve the drainage and productivity of a reservoir in offshore Malaysia. For rig-source VSP in a deviated well, the source-receiver travel path is not a vertical straight line, but an oblique, refracted path. The seismic waves from the source travel along straight paths within a layer of constant velocity. On entering another layer, they undergo refraction and the direction of travel changes. The pseudo-vertical incidence VSP is simulated with a velocity model to accurately calculate the vertical traveltime. This deviated well passes through various layers of overburden before reaching the target reservoirs. Observations from the dipole shear anisotropy, formation dip, and using dispersion analysis, indicate that these shales can be considered transversely isotropic with a vertical axis of symmetry. A single well probabilistic inversion was used to solve for the five anisotropic constants by combining the sonic measurements and prior elastic anisotropy relationships. This advanced model-based correction was the optimal solution to improve the accuracy of checkshot time-depth velocity data in combination with the anisotropic velocity model. Isotropic model-based correction showed a 6-ms time difference compared with standard VSP geometry correction. However, the sonic data in the overburden formations showed a significant amount of layering that gave rise to significant uncertainty in the existing velocity model and thus the position of the top reservoir. The anisotropic parameters were determined at sonic scale for the shale directly overlaying the reservoir. The upscaled anisotropic velocity model showed that an 18-ms time difference with standard VSP geometry correction changed the depth of the reservoir up to 45 m. The new model now placed the reservoir at the correct position and can be used with more confidence for development purposes.
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马来西亚海上斜井中垂直声波测量的精确速度建模和地震井连接
在地震勘探中,垂直地震剖面(VSP)或方格测量是获得精确时深对进行时深转换的有效方法。然而,在斜井中,由于射线弯曲、各向异性和横向速度变化的影响,钻机源vsp的标准几何校正不能提供可靠的时间-深度剖面。利用基于模型的校正或利用先进声波测量的横向各向同性(TI)数据进行垂直入射VSP模拟,可以提高时间-深度剖面的精度。根据声波和VSP时间-深度信息得出的弹性各向异性参数可以准确定位储层内的斜井,从而改善马来西亚近海油藏的排水和产能。对于斜井中的钻机源VSP,源-接收器的行程路径不是垂直的直线,而是倾斜的折射路径。震源发出的地震波在等速层内沿直线传播。在进入另一层时,它们发生折射,运动方向发生改变。利用速度模型对拟垂直入射VSP进行了模拟,以准确计算垂直走时。这口斜井在到达目标储层之前要穿过不同的覆盖层。从偶极剪切各向异性、地层倾角和色散分析的观察结果表明,这些页岩可以被认为具有垂直对称轴的横向各向同性。利用单井概率反演方法,结合声波测量和先验弹性各向异性关系,求解了5个各向异性常数。这种先进的基于模型的校正方法是结合各向异性速度模型提高检射时间-深度速度数据精度的最佳方案。与标准VSP几何校正相比,基于各向同性模型的校正时间相差6 ms。然而,上覆地层的声波数据显示了大量的分层,这给现有的速度模型带来了很大的不确定性,从而导致了顶部储层的位置。在声波尺度上确定了直接上覆储层的页岩各向异性参数。升级后的各向异性速度模型表明,在标准VSP几何校正下,18 ms的时差可使储层深度改变45 m。新模型现在将储层定位在正确的位置,可以更有信心地用于开发目的。
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