Simulation of Large Aggregate Particles System With a New Morphological Model

For the development of a new porous material such as catalytic carrier, the control of the textural properties is of fundamental importance. In order to move towards rational synthesis, it is necessary to better understand the physical phenomena that generate a defined solid structure. A contribute...

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Main Authors: Maxime Moreaud, Giulia Ferri, Severine Humbert, Mathieu Digne, Jean-Marc Schweitzer
Format: Article
Language:English
Published: Slovenian Society for Stereology and Quantitative Image Analysis 2021-07-01
Series:Image Analysis and Stereology
Subjects:
Online Access:https://www.ias-iss.org/ojs/IAS/article/view/2488
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spelling doaj-5210927df25a4aff966ea87403b31c0d2021-07-09T13:47:19ZengSlovenian Society for Stereology and Quantitative Image AnalysisImage Analysis and Stereology1580-31391854-51652021-07-01402718410.5566/ias.24881062Simulation of Large Aggregate Particles System With a New Morphological ModelMaxime Moreaud0Giulia Ferri1Severine Humbert2Mathieu Digne3Jean-Marc Schweitzer4IFP Energies Nouvelles, Rond-Point de l’échangeur de Solaize, 69360, Solaize, FranceIFP Energies Nouvelles, Rond-Point de l’échangeur de Solaize, 69360, Solaize, FranceIFP Energies Nouvelles, Rond-Point de l’échangeur de Solaize, 69360, Solaize, FranceIFP Energies Nouvelles, Rond-Point de l’échangeur de Solaize, 69360, Solaize, FranceIFP Energies Nouvelles, Rond-Point de l’échangeur de Solaize, 69360, Solaize, FranceFor the development of a new porous material such as catalytic carrier, the control of the textural properties is of fundamental importance. In order to move towards rational synthesis, it is necessary to better understand the physical phenomena that generate a defined solid structure. A contribute to this purpose can be achieved by studying the aggregation process inside colloidal suspensions, leading to porosity generation: this phenomenon can be described with a Brownian dynamics model that, for any set of chemical parameters, gives access to the mass distribution and the fractal dimension of colloidal aggregates. However, this model cannot be used for the simulation of large colloidal systems, due to its high computational time, limiting comparison with analytical methods, which probe the whole multi-scale system. This problem is solved by developing a new aggregation morphological model, wherein the fractal dimension is tuned with two compactness parameters. An efficient simulation algorithm is proposed in case of spheres, for which the fractal dimension of the generated aggregates varies between 1.2 and 3. Brownian dynamics results are used to parametrize this purely geometric model, in order to constrain the size and the morphology of the aggregates created. The large numerical solid will be representative of the textural properties of a real solid and will give more information on the porous network. It could be used, for example, to simulate diffusive transport coupled with chemical reaction and to study the impact of the geometry of the porous system on the catalytic performance.https://www.ias-iss.org/ojs/IAS/article/view/2488colloidal structurefractal dimensionmorphological model
collection DOAJ
language English
format Article
sources DOAJ
author Maxime Moreaud
Giulia Ferri
Severine Humbert
Mathieu Digne
Jean-Marc Schweitzer
spellingShingle Maxime Moreaud
Giulia Ferri
Severine Humbert
Mathieu Digne
Jean-Marc Schweitzer
Simulation of Large Aggregate Particles System With a New Morphological Model
Image Analysis and Stereology
colloidal structure
fractal dimension
morphological model
author_facet Maxime Moreaud
Giulia Ferri
Severine Humbert
Mathieu Digne
Jean-Marc Schweitzer
author_sort Maxime Moreaud
title Simulation of Large Aggregate Particles System With a New Morphological Model
title_short Simulation of Large Aggregate Particles System With a New Morphological Model
title_full Simulation of Large Aggregate Particles System With a New Morphological Model
title_fullStr Simulation of Large Aggregate Particles System With a New Morphological Model
title_full_unstemmed Simulation of Large Aggregate Particles System With a New Morphological Model
title_sort simulation of large aggregate particles system with a new morphological model
publisher Slovenian Society for Stereology and Quantitative Image Analysis
series Image Analysis and Stereology
issn 1580-3139
1854-5165
publishDate 2021-07-01
description For the development of a new porous material such as catalytic carrier, the control of the textural properties is of fundamental importance. In order to move towards rational synthesis, it is necessary to better understand the physical phenomena that generate a defined solid structure. A contribute to this purpose can be achieved by studying the aggregation process inside colloidal suspensions, leading to porosity generation: this phenomenon can be described with a Brownian dynamics model that, for any set of chemical parameters, gives access to the mass distribution and the fractal dimension of colloidal aggregates. However, this model cannot be used for the simulation of large colloidal systems, due to its high computational time, limiting comparison with analytical methods, which probe the whole multi-scale system. This problem is solved by developing a new aggregation morphological model, wherein the fractal dimension is tuned with two compactness parameters. An efficient simulation algorithm is proposed in case of spheres, for which the fractal dimension of the generated aggregates varies between 1.2 and 3. Brownian dynamics results are used to parametrize this purely geometric model, in order to constrain the size and the morphology of the aggregates created. The large numerical solid will be representative of the textural properties of a real solid and will give more information on the porous network. It could be used, for example, to simulate diffusive transport coupled with chemical reaction and to study the impact of the geometry of the porous system on the catalytic performance.
topic colloidal structure
fractal dimension
morphological model
url https://www.ias-iss.org/ojs/IAS/article/view/2488
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AT severinehumbert simulationoflargeaggregateparticlessystemwithanewmorphologicalmodel
AT mathieudigne simulationoflargeaggregateparticlessystemwithanewmorphologicalmodel
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