首页> 外国专利> OPTIMIZED METHODOLOGY FOR AUTOMATIC HISTORY MATCHING OF A PETROLEUM RESERVOIR MODEL WITH ENSEMBLE KALMAN FILTER

OPTIMIZED METHODOLOGY FOR AUTOMATIC HISTORY MATCHING OF A PETROLEUM RESERVOIR MODEL WITH ENSEMBLE KALMAN FILTER

机译:包络卡尔曼滤波的石油储层模型自动历史拟合的优化方法。

摘要

A method for history matching a reservoir model based on actual production data from the reservoir over time generates an ensemble of reservoir models using geological data representing petrophysical properties of a subterranean reservoir. Production data corresponding to a particular time instance is acquired from the subterranean reservoir. Normal score transformation is performed on the ensemble and on the acquired production data to transform respective original distributions into normal distributions. The generated ensemble is updated based on the transformed acquired production data using an ensemble Kalman filter (EnKF). The updated generated ensemble and the transformed acquired production data are transformed back to respective original distributions. Future reservoir behavior is predicted based on the updated ensemble.
机译:一种用于基于历史数据根据储层随时间的实际生产数据对储层模型进行匹配的方法,该方法使用代表地下储层岩石物理特性的地质数据来生成一组储层模型。从地下储层获取对应于特定时间实例的生产数据。对集合和获取的生产数据执行正态分数转换,以将各个原始分布转换为正态分布。使用集成卡尔曼滤波器(EnKF),基于转换后的获取的生产数据来更新生成的集成。更新的生成的集合和转换的获取的生产数据被转换回各自的原始分布。根据更新后的集合预测未来的储层行为。

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