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Petroleum reservoir behaviour prediction using a proxy flow model

机译:使用代理流模型的油气藏行为预测

摘要

Using production data and a production flow record based on the production data, a deep neural network (DNN) is trained to model a proxy flow simulation of a reservoir. The proxy flow simulation of the reservoir is performed, using an ensemble Kalman filter (EnKF), based on the trained DNN. The EnKF assimilates new data through updating a current ensemble to obtain history matching by minimizing a difference between a predicted production output from the proxy flow simulation and measured production data from a field. Using the updated current ensemble, a second proxy flow simulation of the reservoir is performed based on the trained DNN. The assimilating and the performing are repeated while new data is available for assimilating. Predicted behavior of the reservoir is determined based on the proxy flow simulation of the reservoir. An indication of the predicted behavior is provided to facilitate production of fluids from the reservoir.
机译:使用生产数据和基于生产数据的生产流记录,对深度神经网络(DNN)进行训练,以对储层的代理流模拟进行建模。基于训练的DNN,使用集成卡尔曼滤波器(EnKF)对储层进行代理水流模拟。 EnKF通过更新当前集合以最小化代理流模拟的预测生产输出与现场测量的生产数据之间的差异来获取历史匹配,从而吸收新数据。使用更新后的当前系综,基于训练后的DNN对储层进行第二次代理水流模拟。重复同化和演奏,同时可以获取新数据。基于储层的代理流模拟确定储层的预测行为。提供了预测行为的指示以促进从储层生产流体。

著录项

  • 公开/公告号GB202013222D0

    专利类型

  • 公开/公告日2020-10-07

    原文格式PDF

  • 申请/专利权人 LANDMARK GRAPHICS CORPORATION;

    申请/专利号GB20200013222

  • 发明设计人

    申请日2018-05-15

  • 分类号

  • 国家 GB

  • 入库时间 2022-08-21 10:59:48

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