Littérature scientifique sur le sujet « Modèle CFD-DEM »
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Articles de revues sur le sujet "Modèle CFD-DEM"
Chen, Yong, Chuanliang Yan, Yuanfang Cheng, Zhongying Han et Yang Li. « Study on Agglomeration and Plugging Behavior of Fine Particles in Reservoir Based on DEM-CFD Coupling ». Journal of Physics : Conference Series 2834, no 1 (1 octobre 2024) : 012158. http://dx.doi.org/10.1088/1742-6596/2834/1/012158.
Texte intégralLengyel, Tamás, Attila Varga, Ferenc Safranyik et Anita Jobbik. « Coupled Numerical Method for Modeling Propped Fracture Behavior ». Applied Sciences 11, no 20 (17 octobre 2021) : 9681. http://dx.doi.org/10.3390/app11209681.
Texte intégralRen, Dezhi, Haolin Yu, Ren Zhang, Jiaqi Li, Yingbo Zhao, Fengbo Liu, Jinhui Zhang et Wei Wang. « Research and Experiments of Hazelnut Harvesting Machine Based on CFD-DEM Analysis ». Agriculture 12, no 12 (9 décembre 2022) : 2115. http://dx.doi.org/10.3390/agriculture12122115.
Texte intégralChen, An, et Yonggang Yu. « Motion Characteristics and Distribution Laws of Particles in the Launching System with a Sequence-Change Structure ». Processes 12, no 7 (11 juillet 2024) : 1454. http://dx.doi.org/10.3390/pr12071454.
Texte intégralChen, A., et Y. G. Yu. « Effect of Initial Loading Position on the Propellant Particles Distribution in Two-module Charge ». Journal of Physics : Conference Series 2460, no 1 (1 avril 2023) : 012015. http://dx.doi.org/10.1088/1742-6596/2460/1/012015.
Texte intégralChen, Juntong, Man Ge et Lin Li. « The Effect of the Aeration Condition on the Liquid–Solid Material Mixing in a Stirred Tank with a Single-Layer Impeller ». Applied Sciences 13, no 15 (7 août 2023) : 9021. http://dx.doi.org/10.3390/app13159021.
Texte intégralThèses sur le sujet "Modèle CFD-DEM"
Badran, Youssef. « Modélisation multi-échelle des forces d'adhésion dans les lits fuidisés gaz-solide ». Electronic Thesis or Diss., Université de Toulouse (2023-....), 2024. http://www.theses.fr/2024TLSEP111.
Texte intégralThe overshoot in bed pressure drop at the minimum fluidization velocity, occurring during the transition from a fixed to a fluidized bed state, is a common phenomenon for fine particles categorized under Group A according to Geldart's classification. These particles exhibit hysteresis between the pressure drop curves for the decreasing and increasing gas velocity paths. This study employs two adhesive particle pressure models within two-fluid model simulations to incorporate the influence of interparticle Van der Waals force, aiming to predict the pressure overshoot. The first adhesive pressure model, developed within the kinetic theory of rapid granular flows framework, failed to capture the overshoot due to the prevalence of multiple and prolonged contacts in fixed beds. We proposed an alternative closure based on coordination number, generating a significantly higher adhesive contribution than the kinetic theory model and successfully reproducing the pressure drop overshoot.In addition, we constructed a Computational Fluid Dynamics-Discrete Element Method (CFD-DEM) numerical database to predict hysteresis in pressure drop. This database can guide the formulation of an Eulerian transport equation for the coordination number, enabling the incorporation of deformation history effects. We explored the impact of Van der Waals force and static friction on the fluidization of fine solids at the mesoscale using CFD-DEM simulations and their role in causing the pressure overshoot phenomenon. Our analysis examines parameters such as gas pressure drop, bed voidage, coordination number, repulsive and adhesive solid pressures, vertical solid velocity gradient, fabric tensor, and particle-wall shear stress throughout the defluidization and fluidization processes. We demonstrated that it is necessary to consider the Van der Waals adhesion to predict the homogeneous expansion of the bed across the range of velocities from the minimum required for fluidization to the minimum for bubbling. The generated CFD-DEM dataset can guide the development of solid stress closures for two-fluid models to incorporate the effects of Van der Waals adhesion and static friction on fluidization hydrodynamics, allowing for the prediction of hysteresis in bed pressure drop at the macroscale.In this work, we incorporated a static-dynamic friction model into the massively parallel CFD-DEM code YALES2 using a two-step algorithm, aiming to address the shortcomings of the Coulomb dynamic friction model, which is practical for fast granular flows but not applicable to stationary beds. We validated our implementation through a series of macro- and microscale tests. Furthermore, we introduced interparticle and particle-wall Van der Waals forces into YALES2 and validated this addition at the microscale. Additionally, we postulated a relaxation expression for the source term in the coordination number transport equation and determined the coordination number relaxation time using CFD-DEM simulation data. Moreover, we employed a penalization technique to semi-implicitly couple gas and solid phases, specifically through the implicit handling of drag and Archimedes forces. This approach aimed to resolve the stability issues encountered when the interphase coupling is explicit
Maya, Fogouang Laurez. « Transport of fine particles. Application to injectivity in geothermal reservoirs ». Electronic Thesis or Diss., Orléans, 2024. http://www.theses.fr/2024ORLE1025.
Texte intégralWhen exploiting renewable resources, such as geothermal energy, the injection of fluids into underground reservoirs can drastically impact the permeability of the porous medium near the injection wells. Fine suspended particles (colloids), whether initially present in the injected fluids or detached from the porous matrix by the pressure gradient, are transported, aggregated, irreversibly or reversibly deposited,and/or lead to pore clogging. The consequence of this pore-clogging (filtration, bridging, or particle aggregation) on permeability results in a drastic decrease in injectivity in the wells, potentially leading to their abandonment. Studying clogging phenomena is crucial to control injectivity better and propose effective unclogging solutions to maintain well exploitation. Thus, this work aims to understand the evolution of the permeability of a porous medium during the injection of a suspension, to predict the injectivity drop, and tooptimize injection processes through numerical models. At the scale of exploitation sites (macroscopic), classical approaches for modeling particle transport and clogging rely on heuristic parameters and restrictive assumptions that limit their predictive capabilities. Notably, considering electrochemical effects on particle deposition, aggregation, and detachment and their feedback on flow can be improved. This thesis aims to provide a solution for modeling colloidal transport in porous media. The strategy adopted is based on a cascade modeling approach across spatio-temporal scales of the porous medium. First, we focus on microscopic scales (molecular, pore, and porenetwork scale) where particle-fluid and fluid-matrix interfaces, the sites of hydromechanical and electrochemical phenomena controlling clogging mechanisms, are well described. We have developed and validated a new numerical approach to simulate colloidal transportat the pore scale. It is based on an Euler-Lagrange method of the CFD-DEM type, where a continuous phase describes the fluid, and particle transport is represented by a discrete phase (individual tracking). In particular, our approach overcomes the classical limitations on the size of computational cells relative to the size of particles. The developed model is a foundation for studying the predominance of physicochemical variables on clogging (infiltration velocity, particle concentration, solution pH and salinity, pore and particle size,etc.). Subsequently, and in a logic of upscaling, we no longer consider particles as discrete elements but as a concentration field. Todo this, we revisit the theory of colloidal deposition around a cylinder to analytically determine macroscopic deposition kinetic laws. Finally, the numerical model simulates particle retention in porous media. It captures the three main clogging mechanisms (size exclusion,arch formation, and aggregation). It allows for determining porosity-permeability relationships and retention kinetics depending on flow regimes, solution chemistry, and suspension properties represented by appropriate dimensionless numbers. The advances brought by this work improve the understanding of clogging mechanisms and guide the development of models on larger scales
Höhne, Thomas. « Kühlmittelvermischung in Druckwasserreaktoren ; Vergleich von Kühlmittelströmung und -vermischung in einem skalierten Modell des DWR Konvoi mit den Vorgängen im Originalreaktor ; Rechnungen mit dem CFD-Code CFX 4.1 ». Forschungszentrum Dresden, 2010. http://nbn-resolving.de/urn:nbn:de:bsz:d120-qucosa-30848.
Texte intégralHöhne, Thomas. « Kühlmittelvermischung in Druckwasserreaktoren ; Vergleich von Kühlmittelströmung und -vermischung in einem skalierten Modell des DWR Konvoi mit den Vorgängen im Originalreaktor ; Rechnungen mit dem CFD-Code CFX 4.1 ». Forschungszentrum Rossendorf, 1997. https://hzdr.qucosa.de/id/qucosa%3A21911.
Texte intégralLivres sur le sujet "Modèle CFD-DEM"
Coupled CFD-DEM Modeling : Formulation, Implementation and Application to Multiphase Flows. Wiley & Sons, Limited, John, 2016.
Trouver le texte intégralChapitres de livres sur le sujet "Modèle CFD-DEM"
Kazidenov, Daniyar, Sagyn Omirbekov et Yerlan Amanbek. « Optimal Time-Step for Coupled CFD-DEM Model in Sand Production ». Dans Computational Science and Its Applications – ICCSA 2023 Workshops, 116–30. Cham : Springer Nature Switzerland, 2023. http://dx.doi.org/10.1007/978-3-031-37111-0_9.
Texte intégralSarkar, Avik, Brian Shoemaker, Pankaj Doshi, Mary T. am Ende, Dalibor Jajcevic, Peter Böhling, Peter Toson, Matej Zadravec et Johannes G. Khinast. « MULTISCALE MODELING OF A PHARMACEUTICAL FLUID BED COATING PROCESS USING CFD/DEM AND POPULATION BALANCE MODELS TO PREDICT COATING UNIFORMITY ». Dans Chemical Engineering in the Pharmaceutical Industry, 419–50. Hoboken, NJ, USA : John Wiley & Sons, Inc., 2019. http://dx.doi.org/10.1002/9781119600800.ch67.
Texte intégralWu, C. Y., et Y. Guo. « Enhancing the Capacity of DEM/CFD with an Immersed Boundary Method ». Dans Discrete Element Modelling of Particulate Media, 10–20. The Royal Society of Chemistry, 2012. http://dx.doi.org/10.1039/bk9781849733601-00010.
Texte intégralQiu, L., et C. Y. Wu. « Gravitational Sedimentation and Separation of Particles in a Liquid : a 3D DEM/CFD Study ». Dans Discrete Element Modelling of Particulate Media, 30–38. The Royal Society of Chemistry, 2012. http://dx.doi.org/10.1039/bk9781849733601-00030.
Texte intégralJ.K. Wood, Robert, et Alexander D.C. Cook. « Erosion-Corrosion in Pipe Flows of Particle-Laden Liquids ». Dans Slurry Technology - New Advances [Working Title]. IntechOpen, 2022. http://dx.doi.org/10.5772/intechopen.107231.
Texte intégralYu, Xiao, Sivaramakrishnan Balachandar, Jarrell Smith et Andrew J. Manning. « Flocculation Dynamics of Cohesive Sediment in Turbulent Flows Using CFD-DEM Approach ». Dans Sediment Transport Research - Further Recent Advances [Working Title]. IntechOpen, 2024. http://dx.doi.org/10.5772/intechopen.1005171.
Texte intégralDi Renzo, A., et F. P. Di Maio. « From Single Particle Drag Force to Segregation in Fluidised Beds ». Dans Discrete Element Modelling of Particulate Media, 3–9. The Royal Society of Chemistry, 2012. http://dx.doi.org/10.1039/bk9781849733601-00003.
Texte intégralTang, Jun, Bing Zhou, Bin Yi, Yadong Wen, Xianqing Fu, Yue Liu, Yanchao Yin et Wenqiang Lin. « Numerical Simulation of Separating Tobacco Leaves from Stems Based on DEM-CFD Coupling ». Dans Advances in Transdisciplinary Engineering. IOS Press, 2023. http://dx.doi.org/10.3233/atde230993.
Texte intégralTang, Jun, Bin Yi, Wenqiang Lin, Yadong Wen, Chengrong Xin, Yue Liu, YanChao Yin et Bing Zhou. « A Coupled CFD-DEM Simulation for Optimization of Tobacco Stems Separation Efficiency in a Cylindrical Separator ». Dans Advances in Transdisciplinary Engineering. IOS Press, 2023. http://dx.doi.org/10.3233/atde230989.
Texte intégralTang, Jun, Wenqiang Lin, Bing Zhou, Banghua He, Shilong Xu, Yue Liu, Yanchao Yin et Bin Yi. « Numerical Study of the Separation Effect of Tobacco Stem Separator with Different Chamber Shapes ». Dans Advances in Transdisciplinary Engineering. IOS Press, 2023. http://dx.doi.org/10.3233/atde230990.
Texte intégralActes de conférences sur le sujet "Modèle CFD-DEM"
Maramizonouz, Sadaf, et Sadegh Nadimi. « Accounting for Particle Morphology in CFD-DEM Modelling ». Dans UK Association for Computational Mechanics Conference 2024. Durham University, 2024. http://dx.doi.org/10.62512/conf.ukacm2024.074.
Texte intégralElghannay, Husam, Kuahai Yu et Danesh Tafti. « On the Improvement of CFD-DEM Coarse Graining Predictions ». Dans ASME 2016 Fluids Engineering Division Summer Meeting collocated with the ASME 2016 Heat Transfer Summer Conference and the ASME 2016 14th International Conference on Nanochannels, Microchannels, and Minichannels. American Society of Mechanical Engineers, 2016. http://dx.doi.org/10.1115/fedsm2016-7805.
Texte intégralBernard, Manuel, Anthony Wachs et Eric Climent. « Multiscale Approach for Particulate Flows, Application to Fluidized Beds ». Dans ASME 2014 4th Joint US-European Fluids Engineering Division Summer Meeting collocated with the ASME 2014 12th International Conference on Nanochannels, Microchannels, and Minichannels. American Society of Mechanical Engineers, 2014. http://dx.doi.org/10.1115/fedsm2014-22020.
Texte intégralStudeník, Ondřej, Martin Kotouč Šourek et Martin Isoz. « Octree-Generated Virtual Mesh for Improved Contact Resolution in CFD-Dem Coupling ». Dans Topical Problems of Fluid Mechanics 2022. Institute of Thermomechanics of the Czech Academy of Sciences, 2022. http://dx.doi.org/10.14311/tpfm.2022.021.
Texte intégralBadhan, Antara, V. M. Krushnarao Kotteda et Vinod Kumar. « CFD DEM Analysis of a Dry Powder Inhaler ». Dans ASME-JSME-KSME 2019 8th Joint Fluids Engineering Conference. American Society of Mechanical Engineers, 2019. http://dx.doi.org/10.1115/ajkfluids2019-4771.
Texte intégralAgrawal, Madhusuden, Ahmadreza Haghnegahdar et Rahul Bharadwaj. « Improved Prediction of Sand Erosion by Accurate Particle Shape Representation in CFD-DEM Modelling ». Dans SPE Annual Technical Conference and Exhibition. SPE, 2021. http://dx.doi.org/10.2118/206122-ms.
Texte intégralWeaver, Dustin, et Sanja Miskovic. « Analysis of Coupled CFD-DEM Simulations in Dense Particle-Laden Turbulent Jet Flow ». Dans ASME 2020 Fluids Engineering Division Summer Meeting collocated with the ASME 2020 Heat Transfer Summer Conference and the ASME 2020 18th International Conference on Nanochannels, Microchannels, and Minichannels. American Society of Mechanical Engineers, 2020. http://dx.doi.org/10.1115/fedsm2020-20274.
Texte intégralWrenger, Hendrik, Bruno Sainte-Rose, Christoph Goniva et Renan Hilbert. « Plastic Accumulation in Front of a Plate in Cross Flow : Model Scale Test and CFD-DEM Modelling ». Dans ASME 2019 38th International Conference on Ocean, Offshore and Arctic Engineering. American Society of Mechanical Engineers, 2019. http://dx.doi.org/10.1115/omae2019-96095.
Texte intégralLu, Teng-Chao, et Zao-Jian Zou. « Numerical Simulation of Ice-Wave Interaction by Coupling DEM-CFD ». Dans ASME 2019 38th International Conference on Ocean, Offshore and Arctic Engineering. American Society of Mechanical Engineers, 2019. http://dx.doi.org/10.1115/omae2019-95105.
Texte intégralAlihosseini, Maryam, et Paul Uwe Thamsen. « On Scouring Efficiency of Flush Waves in Sewers : A Numerical and Experimental Study ». Dans ASME-JSME-KSME 2019 8th Joint Fluids Engineering Conference. American Society of Mechanical Engineers, 2019. http://dx.doi.org/10.1115/ajkfluids2019-4615.
Texte intégralRapports d'organisations sur le sujet "Modèle CFD-DEM"
Pullammanappallil, Pratap, Haim Kalman et Jennifer Curtis. Investigation of particulate flow behavior in a continuous, high solids, leach-bed biogasification system. United States Department of Agriculture, janvier 2015. http://dx.doi.org/10.32747/2015.7600038.bard.
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