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SYSTEM FOR IMPROVED RESERVOIR EXPLORATION AND PRODUCTION

机译:改进油藏勘探和生产系统

摘要

An architecture for predicting and modeling geological characteristics of a reservoir includes one or more neural networks, a static modeling module, a dynamic modeling module, and a fuzzy inference engine to provide recommendations for drilling a wellbore. The neural networks receive log data for coordinates along a well trajectory, and determine a geophysical relationship for a property of a subterranean formation as a function of distance vectors between the coordinates along the well trajectory and one or more sets of randomly generated coordinates. The static modeling module generates three-dimensional static models of a volume of interest based on predicted properties of formations residing therein from the neural networks. The dynamic modeling module determines connectivity values between clusters of formations based on nodal connectivity of neighboring clusters, assigns pressure values across the volume of interest, and generates a three-dimensional dynamic model for the volume of interest based on the pressure values.
机译:一种用于对储层地质特征进行预测和建模的架构,包括一个或多个神经网络,静态建模模块,动态建模模块和模糊推理引擎,以提供有关钻井眼的建议。神经网络接收沿井眼轨迹的坐标的测井数据,并根据沿井眼轨迹的坐标与一组或多组随机生成的坐标之间的距离矢量确定地下岩层性质的地球物理关系。静态建模模块基于神经网络中驻留在其中的岩层的预测特性,生成感兴趣体积的三维静态模型。动态建模模块基于相邻簇的节点连通性来确定地层的簇之间的连通性值,跨感兴趣体积分配压力值,并基于压力值为感兴趣体积生成三维动力学模型。

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