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NEAR REAL-TIME RETURN-ON-FRACTURING-INVESTMENT OPTIMIZATION FOR FRACTURING SHALE AND TIGHT RESERVOIRS

机译:页岩和致密油藏压裂的实时实时压裂投资优化

摘要

Near real-time methodologies for maximizing return-on-fracturing-investment for shale fracturing. An example system can calculate, based on sonic data and density data, mechanical properties and closure stress of a portion of shale rocks for fracture modeling. The system can generate one or more rock mechanical models based on the mechanical properties and closure stress of the portion of shale rocks, and perform one or more fracture modeling simulations based on one or more treatment parameter values. Based on the one or more fracture modeling simulations, the system can generate a neural network model which predicts a fracture productivity indicator of an effective propped area (EPA) and/or an effective propped length (EPL), and calculate a return-on-fracturing-investment (ROFI) based on the EPA or EPL predicted by the neural network model.
机译:使页岩压裂的压裂投资回报最大化的近实时方法。一个示例系统可以基于声波数据和密度数据计算一部分页岩岩石的力学性能和闭合应力以进行裂缝建模。该系统可以基于部分页岩的力学特性和闭合应力来生成一个或多个岩石力学模型,并基于一个或多个处理参数值来执行一个或多个裂缝建模模拟。基于一个或多个裂缝建模模拟,系统可以生成神经网络模型,该模型预测有效支撑面积(EPA)和/或有效支撑长度(EPL)的裂缝生产率指标,并计算出基于神经网络模型预测的EPA或EPL的压裂投资(ROFI)。

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