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Результаты поиска по 'electric submersible pump':
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  1. В статье представлены математические и численные модели взаимосвязанных термо- и гидродинамических процессов эксплуатационного режима разработки единого нефтедобывающего комплекса при гидрогелевом заводнении неоднородного нефтяного пласта, вскрытого системой произвольно расположенных нагнетательных скважин и добывающих скважин, оснащенных погружными многоступенчатыми электроцентробежными насосами. Особенностью нашего подхода является моделирование работы специального наземного оборудования (станции управления погружными насосами и штуцерной камеры на устье добывающих скважин), предназначенного для регулирования режимов работы как всего комплекса в целом, так и его отдельных элементов.

    Полная дифференциальная модель включает в себя уравнения, описывающие нестационарную двухфазную пятикомпонентную фильтрацию в пласте, квазистационарные процессы тепло- и массопереноса в трубах скважин и рабочих каналах погружных насосов. Специальные нелинейные граничные условия моделируют, соответственно, влияние диаметра дросселя на расход и давление на устье каждой добывающей скважины, а также частоты электрического тока на эксплуатационные характеристики погружного насосного узла. Разработка нефтяных месторождений также регулируется посредством изменения забойного давления каждой нагнетательной скважины, концентраций закачиваемых в нее гелеобразующих компонентов, их общих объемов и продолжительности закачки. Задача решается численно с использованием консервативных разностных схем, построенных на основе метода конечных разностей. Разработанные итерационные алгоритмы ориентированы на использование современных параллельных вычислительных технологий. Численная модель реализована в программном комплексе, который можно рассматривать как «интеллектуальную систему скважин» для виртуального управления разработкой нефтяных месторождений.

    The paper provides the mathematical and numerical models of the interrelated thermo- and hydrodynamic processes in the operational mode of development the unified oil-producing complex during the hydrogel flooding of the non-uniform oil reservoir exploited with a system of arbitrarily located injecting wells and producing wells equipped with submersible multistage electrical centrifugal pumps. A special feature of our approach is the modeling of the special ground-based equipment operation (control stations of submersible pumps, drossel devices on the head of producing wells), designed to regulate the operation modes of both the whole complex and its individual elements.

    The complete differential model includes equations governing non-stationary two-phase five-component filtration in the reservoir, quasi-stationary heat and mass transfer in the wells and working channels of pumps. Special non-linear boundary conditions and dependencies simulate, respectively, the influence of the drossel diameter on the flow rate and pressure at the wellhead of each producing well and the frequency electric current on the performance characteristics of the submersible pump unit. Oil field development is also regulated by the change in bottom-hole pressure of each injection well, concentration of the gel-forming components pumping into the reservoir, their total volume and duration of injection. The problem is solved numerically using conservative difference schemes constructed on the base of the finite difference method, and developed iterative algorithms oriented on the parallel computing technologies. Numerical model is implemented in a software package which can be considered as the «Intellectual System of Wells» for the virtual control the oil field development.

  2. Конюхов В.М., Конюхов И.В., Чекалин А.Н.
    Numerical Simulation, Parallel Algorithms and Software for Performance Forecast of the System “Fractured-Porous Reservoir – Producing Well” During its Commissioning Into Operation
    Компьютерные исследования и моделирование, 2019, т. 11, № 6, с. 1069-1075

    The mathematical model, finite-difference schemes and algorithms for computation of transient thermoand hydrodynamic processes involved in commissioning the unified system including the oil producing well, electrical submersible pump and fractured-porous reservoir with bottom water are developed. These models are implemented in the computer package to simulate transient processes with simultaneous visualization of their results along with computations. An important feature of the package Oil-RWP is its interaction with the special external program GCS which simulates the work of the surface electric control station and data exchange between these two programs. The package Oil-RWP sends telemetry data and current parameters of the operating submersible unit to the program module GCS (direct coupling). The station controller analyzes incoming data and generates the required control parameters for the submersible pump. These parameters are sent to Oil-RWP (feedback). Such an approach allows us to consider the developed software as the “Intellectual Well System”.

    Some principal results of the simulations can be briefly presented as follows. The transient time between inaction and quasi-steady operation of the producing well depends on the well stream watering, filtration and capacitive parameters of oil reservoir, physical-chemical properties of phases and technical characteristics of the submersible unit. For the large time solution of the nonstationary equations governing the nonsteady processes is practically identical to the inverse quasi-stationary problem solution with the same initial data. The developed software package is an effective tool for analysis, forecast and optimization of the exploiting parameters of the unified oil-producing complex during its commissioning into the operating regime.

    The mathematical model, finite-difference schemes and algorithms for computation of transient thermoand hydrodynamic processes involved in commissioning the unified system including the oil producing well, electrical submersible pump and fractured-porous reservoir with bottom water are developed. These models are implemented in the computer package to simulate transient processes with simultaneous visualization of their results along with computations. An important feature of the package Oil-RWP is its interaction with the special external program GCS which simulates the work of the surface electric control station and data exchange between these two programs. The package Oil-RWP sends telemetry data and current parameters of the operating submersible unit to the program module GCS (direct coupling). The station controller analyzes incoming data and generates the required control parameters for the submersible pump. These parameters are sent to Oil-RWP (feedback). Such an approach allows us to consider the developed software as the “Intellectual Well System”.

    Some principal results of the simulations can be briefly presented as follows. The transient time between inaction and quasi-steady operation of the producing well depends on the well stream watering, filtration and capacitive parameters of oil reservoir, physical-chemical properties of phases and technical characteristics of the submersible unit. For the large time solution of the nonstationary equations governing the nonsteady processes is practically identical to the inverse quasi-stationary problem solution with the same initial data. The developed software package is an effective tool for analysis, forecast and optimization of the exploiting parameters of the unified oil-producing complex during its commissioning into the operating regime.

Журнал индексируется в Scopus

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