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System and Methods for Developing and Deploying Oil Well Models to Predict Wax/Hydrate Buildups for Oil Well Optimization

机译:用于开发和部署油井模型的系统和方法,以预测油井优化的蜡/水合物累积

摘要

A method and system for estimating wax or hydrate deposits is desirable for the oil industry and important for assuring flow conditions and production, avoiding downtime, and reducing or preventing costly interventions. The method and system disclosed herein use artificial intelligence and machine learning techniques combined with oil well historical operational sensor data and historical operational event records (such as diesel hot flush, slick line, coil tubing, etc.) to build an oil well model. The method and system enable oil well practitioners to test and validate the built model and deploy the model online to estimate and/or detect wax or hydrate deposition status. By using one or more such models in operating an oil well, users can monitor and/or detect the status of wax of hydrate deposits in an oil well and can optimize production, maintenance, and planning for oil wells.
机译:用于估算蜡或水合物沉积物的方法和系统对于石油工业而言,是为了确保流动条件和生产,避免停机和减少或预防昂贵干预的重要方法和系统。 本文公开的方法和系统使用人工智能和机器学习技术与油井历史运营传感器数据和历史操作事件记录(如柴油热冲洗,光滑线,线圈管等)结合起来构建油井模型。 该方法和系统使油井从业者能够测试和验证构建的模型并在线部署模型以估计和/或检测蜡或水合物沉积状态。 通过使用一个或多个这样的型号操作油井,用户可以在油井中监控和/或检测水合物沉积物的蜡的状态,可以优化油井的生产,维护和规划。

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