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Publication date:
16 June 2024
Comparison of DLA and RLA porous structure modelling algorithms
Date of submission article: 05.05.2017
UDC: 519.876.5
The article was published in issue no. № 4, 2017 [ pp. 758-764 ]Abstract:The paper analyzes different methods of porous materials structures generation. It shows that diffusion-limited aggregation (DLA) and reaction-limited aggregation (RLA) methods are perspective for modeling and visualization of high-porosity aerogel materials. The authors have developed algorithms for calculations using DLA and modified RLA. RLA algorithm modification in comparison with DLA is in using probability of particle aggregation when colliding with a cluster. The particle is not always aggregated, but with a given probability. This allows adjusting the branching of the generated structure. Software is implemented in C# in a Microsoft Visual Studio environment. This software requires Microsoft Windows 7 and higher operating system and at least 2 GB RAM. The paper has visualization of the generated aerogel structures. After comparing two methods it is established that the DLA method requires less computational time than RLA, however it allows modeling not only the structure but also the gelation process (structure creation), allowing controlling the specific surface area of the structure and the pore size distribution in it. The paper presents calculation data and algorithms for generating various aerogel structures. It is shown that with de-creasing the aggregation probability of the generated structure, the performance of the modified RLA algorithm decreases too. The low performance is particularly noticeable on large structures. The authors make a conclusion that it is reasonable to use the DLA method for big structure generation when it is not necessary to consider pore size distribution.
Аннотация:В статье анализируются разные способы генерации структур пористых материалов. Показана перспективность методов агрегации, ограниченной диффузией (DLA), и агрегации, ограниченной реакцией (RLA), для моделирования и визуализации высокопористых материалов аэрогелей. Авторами были разработаны алгоритмы расчетов с использованием DLA и модифицированного RLA. Модификация алгоритма RLA по сравнению с DLA заключается в учете вероятности агрегации частицы при столкновении с кластером. Частица агрегируется не всегда, а с заданной вероятностью. Это позволяет влиять на разветвленность генерируемой структуры. ПО реализовано на языке C# в среде Microsoft Visual Studio. Для работы данного ПО необходимы операционная система Microsoft Windows 7 и выше и не менее 2 Гб ОЗУ. Реализована визуализация сгенерированных структур аэрогелей. В результате сравнения двух методов установлено, что метод DLA требует меньше вычислительного времени, чем RLA, однако позволяет моделировать не только структуру, но и процесс гелирования (создания структуры), давая возможность контролировать площадь удельной поверхности структуры и распределение пор по размерам в ней. В статье приведены расчетные данные и алгоритмы генерации различных структур аэрогелей. Показано, что при уменьшении вероятности слипания генерируемой структуры происходит падение производительности модифицированного алгоритма RLA, что особенно сильно заметно на больших структурах. Сделан вывод о целесообразности применения метода DLA при генерации больших структур и отсутствии необходимости в учете распределения пор по размерам.
Authors: A.Yu. Tyrtyshnikov (chemcom@muctr.ru) - D. Mendeleev University of Chemical Technology of Russian Federation, Moscow, Russia, I.V. Lebedev (chemcom@muctr.ru) - D. Mendeleev University of Chemical Technology of Russian Federation, Moscow, Russia, Ivanov S.I. (patephon2009@yandex.ru) - D. Mendeleev University of Chemical Technology of Russian Federation, Moscow, Russia, Ph.D, Menshutina N.V. (chemcom@muctr.ru) - D. Mendeleev University of Chemical Technology of Russian Federation, Moscow, Russia, Ph.D | |
Keywords: reaction-limited aggregation, diffusion-limited aggregation, pore size distribution, specific surface area, gelation, aerogels, structure, modeling |
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Сравнение алгоритмов DLA и RLA при моделировании пористых структур
DOI: 10.15827/0236-235X.120.758-764
Date of submission article: 05.05.2017
UDC: 519.876.5
The article was published in issue no. № 4, 2017. [ pp. 758-764 ]
The paper analyzes different methods of porous materials structures generation. It shows that diffusion-limited aggregation (DLA) and reaction-limited aggregation (RLA) methods are perspective for modeling and visualization of high-porosity aerogel materials.
The authors have developed algorithms for calculations using DLA and modified RLA. RLA algorithm modification in comparison with DLA is in using probability of particle aggregation when colliding with a cluster. The particle is not always aggregated, but with a given probability. This allows adjusting the branching of the generated structure. Software is implemented in C# in a Microsoft Visual Studio environment. This software requires Microsoft Windows 7 and higher operating system and at least 2 GB RAM.
The paper has visualization of the generated aerogel structures. After comparing two methods it is established that the DLA method requires less computational time than RLA, however it allows modeling not only the structure but also the gelation process (structure creation), allowing controlling the specific surface area of the structure and the pore size distribution in it.
The paper presents calculation data and algorithms for generating various aerogel structures. It is shown that with de-creasing the aggregation probability of the generated structure, the performance of the modified RLA algorithm decreases too. The low performance is particularly noticeable on large structures. The authors make a conclusion that it is reasonable to use the DLA method for big structure generation when it is not necessary to consider pore size distribution.
A.Yu. Tyrtyshnikov (chemcom@muctr.ru) - D. Mendeleev University of Chemical Technology of Russian Federation, Moscow, Russia, I.V. Lebedev (chemcom@muctr.ru) - D. Mendeleev University of Chemical Technology of Russian Federation, Moscow, Russia, Ivanov S.I. (patephon2009@yandex.ru) - D. Mendeleev University of Chemical Technology of Russian Federation, Moscow, Russia, Ph.D, Menshutina N.V. (chemcom@muctr.ru) - D. Mendeleev University of Chemical Technology of Russian Federation, Moscow, Russia, Ph.D
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PDF version article Full issue in PDF (29.80Mb) |
The article was published in issue no. № 4, 2017 [ pp. 758-764 ] |
The article was published in issue no. № 4, 2017. [ pp. 758-764 ]
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