基于水平井和地震反演的页岩气储层建模

S. Gai, Ai-lin Jia, Yunsheng Wei
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摘要

地震垂向分辨率太低,无法准确识别靶内薄页岩层的垂向边界和岩石物性。研究重点是基于水平井和地震反演的页岩储层结构和岩石物理建模。将地震趋势面与水平井井顶相结合,计算出目标地层的顶底面,并根据几口直井的各层厚度百分比得到各小层的构造面。最后,建立了结构模型。地震反演结果可以控制岩石物性的水平走向。测井资料可以控制岩石物性的垂向变化趋势。在水平和垂直趋势线性组合加权的约束下,建立了岩石物理模型。结果表明:目标层内水平井轨迹准确,层间不相交;各层厚度在平面上相对均匀,与直井厚度基本一致,显示出页岩稳定沉积的特征。模型中各层厚度与直井厚度的差异很小,特别是主生产层1厚度的差异小于0.1m。线性组合加权后,岩石物性在垂向呈双峰分布,与直井岩石物性分布规律一致,弥补了垂向地震低分辨率的不足。通过对薄页岩储层进行精细的构造和岩石物理建模,为进一步建模提供了可靠的空间分布网络和岩石物理性质。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Reservoir Modelling in the Shale Gas Reservoirs Based on Horizontal Wells and Seismic Inversion
The seismic vertical resolution is too low to identify the vertical boundary and petrophysical properties of the thin shale layers inside the target precisely. This study focuses on structural and petrophysical modeling of shale reservoirs based on horizontal wells and seismic inversion. Combined seismic trend surface with the well tops on horizontal wells, we calculated the top and bottom surface of the target formation, and obtained the structural surface of each small layer according to the thickness percentage of each layer from few vertical wells. Ultimately, the structural model is made. The horizontal trend of the petrophysical properties can be controlled by the seismic inversion results. The vertical trend of the petrophysical properties can be controlled by well logs. Constricted by the linear combination weighting of the horizontal and vertical trend, the petrophysical model is established. The results show that the trajectory of the horizontal well in the target layer is accurate, and the layers are not intersected. The thickness of each layer is relatively even in plane, which is basically the same as that of the vertical well, indicating the characteristics of shale stable deposition. The discrepancy between the thickness of each layer in the model and those of the vertical wells is very small, especially in the main production layer 1, less than 0.1m. With the linear combination weighting, petrophysical properties show the bimodal distribution in vertical trend, which is in accordance with the regularities of petrophysical distributions from vertical wells, making up for the seismic low resolution in vertical direction. The research shows the fine structural and petrophysical modeling of the thin shale reservoirs, which provide the credible spatial distribution network and petrophysical properties for further modeling.
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