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Результаты поиска по 'coded differential transform method':
Найдено статей: 2
  1. Михайленко С.А., Шеремет М.А.
    Моделирование конвективно-радиационного теплопереноса в дифференциально обогреваемой вращающейся полости
    Компьютерные исследования и моделирование, 2018, т. 10, № 2, с. 195-207

    Проведено математическое моделирование нестационарных режимов естественной конвекции и поверхностного излучения в замкнутой вращающейся квадратной полости. Рассматриваемая область решения имела две противоположные изотермические стенки, поддерживаемые при постоянных низкой и высокой температурах, остальные стенки являлись адиабатическими. Стенки считались диффузно-серыми. Анализируемая полость вращалась с постоянной угловой скоростью относительно оси, проходящей через центр полости и ориентированной ортогонально области решения. Математическая модель, сформулированная в безразмерных преобразованных переменных «функция тока – завихренность скорости» на основе приближений Буссинеска и диатермичности рабочей среды, была реализована численно методом конечных разностей. Уравнения дисперсии завихренности и энергии решались на основе локально-одномерной схемы А. А. Самарского. Диффузионные слагаемые аппроксимировались центральными разностями, конвективные — с использованием монотонной аппроксимации А. А. Самарского. Разностные уравнения решались методом прогонки. Разностное уравнение Пуассона для функции тока решалось отдельно с применением метода последовательной верхней релаксации. Оптимальное значение параметра релаксации подбиралось на основе вычислительных экспериментов. Анализ радиационного теплообмена проведен с использованием метода сальдо в варианте Поляка. Разработанный вычислительный код был протестирован на множестве сеток, а также верифицирован путем сопоставления полученных результатов при решении модельной задачи с экспериментальными и численными данными других авторов.

    Численные исследования нестационарных режимов естественной конвекции и поверхностного теплового излучения в замкнутой вращающейся полости проведены при следующих значениях безразмерных параметров: Ra = 103–106, Ta = 0–105, Pr = 0.7, ε = 0–0.9. Все распределения были получены для двадцатого полного оборота полости, когда наблюдается установление периодической картины течения и теплопереноса. В результате анализа установлено, что при малой угловой скорости вращения полости возможна интенсификация течения, а дальнейший рост скорости вращения приводит к ослаблению конвективного течения. Радиационное число Нуссельта незначительно изменяется при варьировании числа Тейлора.

    Mikhailenko S.A., Sheremet M.A.
    Simulation of convective-radiative heat transfer in a differentially heated rotating cavity
    Computer Research and Modeling, 2018, v. 10, no. 2, pp. 195-207

    Mathematical simulation of unsteady natural convection and thermal surface radiation within a rotating square enclosure was performed. The considered domain of interest had two isothermal opposite walls subjected to constant low and high temperatures, while other walls are adiabatic. The walls were diffuse and gray. The considered cavity rotated with constant angular velocity relative to the axis that was perpendicular to the cavity and crossed the cavity in the center. Mathematical model, formulated in dimensionless transformed variables “stream function – vorticity” using the Boussinesq approximation and diathermic approach for the medium, was performed numerically using the finite difference method. The vorticity dispersion equation and energy equation were solved using locally one-dimensional Samarskii scheme. The diffusive terms were approximated by central differences, while the convective terms were approximated using monotonic Samarskii scheme. The difference equations were solved by the Thomas algorithm. The approximated Poisson equation for the stream function was solved by successive over-relaxation method. Optimal value of the relaxation parameter was found on the basis of computational experiments. Radiative heat transfer was analyzed using the net-radiation method in Poljak approach. The developed computational code was tested using the grid independence analysis and experimental and numerical results for the model problem.

    Numerical analysis of unsteady natural convection and thermal surface radiation within the rotating enclosure was performed for the following parameters: Ra = 103–106, Ta = 0–105, Pr = 0.7, ε = 0–0.9. All distributions were obtained for the twentieth complete revolution when one can find the periodic behavior of flow and heat transfer. As a result we revealed that at low angular velocity the convective flow can intensify but the following growth of angular velocity leads to suppression of the convective flow. The radiative Nusselt number changes weakly with the Taylor number.

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  2. Methi G., Kumar A.
    Numerical Solution of Linear and Higher-order Delay Differential Equations using the Coded Differential Transform Method
    Компьютерные исследования и моделирование, 2019, т. 11, № 6, с. 1091-1099

    The aim of the paper is to obtain a numerical solution for linear and higher-order delay differential equations (DDEs) using the coded differential transform method (CDTM). The CDTM is developed and applied to delay problems to show the efficiency of the proposed method. The coded differential transform method is a combination of the differential transform method and Mathematica software. We construct recursive relations for a few delay problems, which results in simultaneous equations, and solve them to obtain various series solution terms using the coded differential transform method. The numerical solution obtained by CDTM is compared with an exact solution. Numerical results and error analysis are presented for delay differential equations to show that the proposed method is suitable for solving delay differential equations. It is established that the delay differential equations under discussion are solvable in a specific domain. The error between the CDTM solution and the exact solution becomes very small if more terms are included in the series solution. The coded differential transform method reduces complex calculations, avoids discretization, linearization, and saves calculation time. In addition, it is easy to implement and robust. Error analysis shows that CDTM is consistent and converges fast. We obtain more accurate results using the coded differential transform method as compared to other methods.

    Methi G., Kumar A.
    Numerical Solution of Linear and Higher-order Delay Differential Equations using the Coded Differential Transform Method
    Computer Research and Modeling, 2019, v. 11, no. 6, pp. 1091-1099

    The aim of the paper is to obtain a numerical solution for linear and higher-order delay differential equations (DDEs) using the coded differential transform method (CDTM). The CDTM is developed and applied to delay problems to show the efficiency of the proposed method. The coded differential transform method is a combination of the differential transform method and Mathematica software. We construct recursive relations for a few delay problems, which results in simultaneous equations, and solve them to obtain various series solution terms using the coded differential transform method. The numerical solution obtained by CDTM is compared with an exact solution. Numerical results and error analysis are presented for delay differential equations to show that the proposed method is suitable for solving delay differential equations. It is established that the delay differential equations under discussion are solvable in a specific domain. The error between the CDTM solution and the exact solution becomes very small if more terms are included in the series solution. The coded differential transform method reduces complex calculations, avoids discretization, linearization, and saves calculation time. In addition, it is easy to implement and robust. Error analysis shows that CDTM is consistent and converges fast. We obtain more accurate results using the coded differential transform method as compared to other methods.

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