MODEL PARAMETER REDUCTIONS AND MODEL PARAMETER SELECTION TO OPTIMIZE EXECUTION TIME OF RESERVOIR MANAGEMENT WORKFLOWS

    公开(公告)号:US20210131260A1

    公开(公告)日:2021-05-06

    申请号:US17014944

    申请日:2020-09-08

    Abstract: An apparatus for generating forecasts from a high-dimensional parameter data space comprising a reservoir model, a model order reduction module, and an assisted history matching module. The reservoir model having input variables, output variables, and an algorithmic model. The input variables, output variables, and the algorithmic model are generated by a flow simulator module and from a formation and reservoir properties database and a field production database. The model order reduction module generates a subset of the original or transformed input variables. This subset has a reduced parameter space than that of the input variables. The subset is generated using a function decomposition and a design of experiments (sensitivity analysis) to reduce number of original variables and identify original or transformed input variables that can be used to approximate output variables. The assisted history matching module adjust values of the output variables based on a difference between the at least one of the output variables and dynamic field production data to improve model accuracy.

    FLOW SIMULATOR FOR GENERATING RESERVOIR MANAGEMENT WORKFLOWS AND FORECASTS BASED ON ANALYSIS OF HIGH-DIMENSIONAL PARAMETER DATA SPACE

    公开(公告)号:US20210133375A1

    公开(公告)日:2021-05-06

    申请号:US17014331

    申请日:2020-09-08

    Abstract: An apparatus used to generate forecasts from a high-dimensional parameter data space. The apparatus comprising a reservoir model and a flow simulator module. The reservoir model comprising a plurality input variables, output variables, and at least one algorithmic model. The input variables and output variables are generated by the flow simulator module and variables from a formation and reservoir properties database and a field production database. The flow simulator module generates the at least one algorithmic model and the output variables using at least one selected from a group comprising a full-physics flow simulator, proxy flow simulator for assisted history matching, and a proxy flow simulator for field development optimization. The full-physics flow simulator and the two proxy flow simulators generate the at least one algorithmic model using at least one selected from a group comprising the reservoir model, history matching input variables, and optimization input variables.

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