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    • 1. 发明授权
    • System and method for oilfield production operations
    • 油田生产作业系统与方法
    • US08117016B2
    • 2012-02-14
    • US12105104
    • 2008-04-17
    • Vijaya HalabeRichard Torrens
    • Vijaya HalabeRichard Torrens
    • G06G7/48
    • E21B49/00E21B43/00
    • The invention relates to a method of performing production operations. The method includes identifying a plurality of simulators from a group consisting of a wellsite simulator for modeling at least a portion of the wellsite of the oilfield and a non-wellsite simulator for modeling at least a portion of a non-wellsite portion of the oilfield, defining a first strategy template comprising a first condition defined based on a first variable of the plurality of simulators and a first action defined based on a control parameter of the plurality of simulators, wherein execution of the first action during simulation is determined based on the first condition in view of a logical relationship, developing a first strategy for managing the plurality of simulators during simulation, wherein the first strategy is developed using the first strategy template, and selectively simulating the operations of the oilfield using the plurality of simulators based on the first strategy.
    • 本发明涉及一种执行生产操作的方法。 该方法包括从由用于建模油田的井场的至少一部分的井场模拟器组成的组中识别多个模拟器,以及用于对油田的非井场部分的至少一部分进行建模的非井场模拟器, 定义第一策略模板,其包括基于所述多个模拟器中的第一变量定义的第一条件和基于所述多个模拟器的控制参数定义的第一动作,其中,基于所述第一模式确定所述第一动作在所述模拟期间的执行, 鉴于逻辑关系的条件,开发用于在模拟期间管理多个模拟器的第一策略,其中使用第一策略模板开发第一策略,并且基于第一策略模板选择性地模拟使用多个模拟器的油田的操作 战略。
    • 2. 发明申请
    • SYSTEM AND METHOD FOR OILFIELD PRODUCTION OPERATIONS
    • 油田生产操作的系统和方法
    • US20080262802A1
    • 2008-10-23
    • US12105104
    • 2008-04-17
    • Vijaya HalabeRichard Torrens
    • Vijaya HalabeRichard Torrens
    • G06G7/50G06G7/64G06F17/50G01V9/00
    • E21B49/00E21B43/00
    • The invention relates to a method of performing production operations. The method includes identifying a plurality of simulators from a group consisting of a wellsite simulator for modeling at least a portion of the wellsite of the oilfield and a non-wellsite simulator for modeling at least a portion of a non-wellsite portion of the oilfield, defining a first strategy template comprising a first condition defined based on a first variable of the plurality of simulators and a first action defined based on a control parameter of the plurality of simulators, wherein execution of the first action during simulation is determined based on the first condition in view of a logical relationship, developing a first strategy for managing the plurality of simulators during simulation, wherein the first strategy is developed using the first strategy template, and selectively simulating the operations of the oilfield using the plurality of simulators based on the first strategy.
    • 本发明涉及一种执行生产操作的方法。 该方法包括从由用于建模油田的井场的至少一部分的井场模拟器组成的组中识别多个模拟器,以及用于对油田的非井场部分的至少一部分进行建模的非井场模拟器, 定义第一策略模板,其包括基于所述多个模拟器中的第一变量定义的第一条件和基于所述多个模拟器的控制参数定义的第一动作,其中,基于所述第一模式确定所述第一动作在所述模拟期间的执行, 鉴于逻辑关系的条件,开发用于在模拟期间管理多个模拟器的第一策略,其中使用第一策略模板开发第一策略,并且基于第一策略模板选择性地模拟使用多个模拟器的油田的操作 战略。
    • 3. 发明申请
    • Method and system for integrated reservoir and surface facility networks simulations
    • US20070112547A1
    • 2007-05-17
    • US10586283
    • 2002-11-23
    • Kassem GhorayebJonathan HolmesRichard TorrensBalraj Grewal
    • Kassem GhorayebJonathan HolmesRichard TorrensBalraj Grewal
    • G06G7/48
    • G06F17/5009E21B41/00E21B49/00G06F2217/06G06F2217/16G06F2217/80
    • Integrated surface-subsurface modeling has been shown to have a critical impact on field development and optimization. Integrated models are often necessary to analyze properly the pressure interaction between a reservoir and a constrained surface facility network, or to predict the behavior of several fields, which may have different fluid compositions, sharing a common surface facility. The latter is gaining a tremendous significance in recent deepwater field development. These applications require an integrated solution with the following capabilities: * to balance a surface network model with a reservoir simulation model in a robust and efficient manner. * To couple multiple reservoir models, production and injection networks, synchronising their advancement through time. * To allow the reservoir and surface network models to use their own independent fluid descriptions (black oil or compositional descriptions with differing sets of pseudo-components). * To apply global production and injection constraints to the coupled system (including the transfer of re-injection fluids between reservoirs). In this paper we describe a general-purpose multi-platform reservoir and network coupling controller having all the above features. The controller communicates with a selection of reservoir simulators and surface network simulators via an open message-passing interface. It manages the balancing of the reservoirs and surface networks, and synchronizes their advancement through time. The controller also applies the global production and injection constraints, and converts the hydrocarbon fluid streams between the different sets of pseudo-components used in the simulation models. The controller's coupling and synchronization algorithms are described, and example applications are provided. The flexibility of the controller's open interface makes it possible to plug in further modules (to perform optimization, for example) and additional simulators.