Littérature scientifique sur le sujet « Solid gas-coupling »
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Articles de revues sur le sujet "Solid gas-coupling"
Sun, Shujie, Xiaosai Dong, Jie Wang, Haodong Zhang et Zhenya Duan. « Research Progress on Numerical Simulation of Two-phase Flow in the Gas-solid Fluidized Bed ». E3S Web of Conferences 259 (2021) : 04002. http://dx.doi.org/10.1051/e3sconf/202125904002.
Texte intégralLi, Sheng Zhou, Chang Bao Jiang, Jun Wei Yao et Ming Hui Li. « Solid-Gas Coupling Model and Numerical Simulation of Coal Containing Gas Based on Comsol Multiphysic ». Advanced Materials Research 616-618 (décembre 2012) : 515–20. http://dx.doi.org/10.4028/www.scientific.net/amr.616-618.515.
Texte intégralBing, Liang, et Li Ye. « Numerical Simulation of Gas-Solid Coupling in Coal Face ». Applied Mechanics and Materials 29-32 (août 2010) : 1791–96. http://dx.doi.org/10.4028/www.scientific.net/amm.29-32.1791.
Texte intégralZhou, Aitao, Kai Wang, Lingpeng Fan et T. A. Kiryaeva. « Gas-solid coupling laws for deep high-gas coal seams ». International Journal of Mining Science and Technology 27, no 4 (juillet 2017) : 675–79. http://dx.doi.org/10.1016/j.ijmst.2017.05.016.
Texte intégralSui, Yiyong, Mengying Luo, Tangmao Lin, Guihua Liu, Yuan Zhao, Yazhou Wu et Lanqing Ren. « Numerical Simulation of Critical Production Pressure Drop of Injection and Production Wells in Gas Storage Based on Gas-Solid Coupling ». Separations 9, no 10 (13 octobre 2022) : 305. http://dx.doi.org/10.3390/separations9100305.
Texte intégralZhu, Zhuohui, Tao Feng, Zhigang Yuan, Donghai Xie et Wei Chen. « Solid-Gas Coupling Model for Coal-Rock Mass Deformation and Pressure Relief Gas Flow in Protection Layer Mining ». Advances in Civil Engineering 2018 (2018) : 1–6. http://dx.doi.org/10.1155/2018/5162628.
Texte intégralNiu, Dong, et Hongtao Gao. « Thermal Conductivity of Ordered Porous Structures Coupling Gas and Solid Phases : A Molecular Dynamics Study ». Materials 14, no 9 (26 avril 2021) : 2221. http://dx.doi.org/10.3390/ma14092221.
Texte intégralWang, Deng Ke, Jian Ping Wei, Heng Jie Qin et Le Wei. « Research on Solid-Gas Coupling Dynamic Model for Loaded Coal Containing Gas ». Advanced Materials Research 594-597 (novembre 2012) : 446–51. http://dx.doi.org/10.4028/www.scientific.net/amr.594-597.446.
Texte intégralHu, Shixiong, Xiao Liu et Xianzhong Li. « Fluid–Solid Coupling Model and Simulation of Gas-Bearing Coal for Energy Security and Sustainability ». Processes 8, no 2 (24 février 2020) : 254. http://dx.doi.org/10.3390/pr8020254.
Texte intégralFukun, Xiao, Meng Xin, Li Lianchong, Liu Jianfeng, Liu Gang, Liu Zhijun et Xu Lei. « Thermos-Solid-Gas Coupling Dynamic Model and Numerical Simulation of Coal Containing Gas ». Geofluids 2020 (22 décembre 2020) : 1–9. http://dx.doi.org/10.1155/2020/8837425.
Texte intégralThèses sur le sujet "Solid gas-coupling"
Hechenblaikner, Gerald. « Mode coupling and superfluidity of a Bose-Einstein condensed gas ». Thesis, University of Oxford, 2002. http://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.249397.
Texte intégralZeren, Zafer. « Lagrangian stochastic modeling of turbulent gas-solid flows with two-way coupling in homogeneous isotropic turbulence ». Thesis, Toulouse, INPT, 2010. http://www.theses.fr/2010INPT0106/document.
Texte intégralIn this thesis, performed in IMFT, we are interested in the turbulent gas-solid flows and more specifically, in the phenomenon of turbulence modulation which is the modification of the structure of the turbulence due to the solid particles. This mechanism is crucial in flows with high particle mass-loadings. In this work, we considered a homogeneous isotropic turbulence without gravity kept stationary with stochastic type forcing. Discrete particles are tracked individually in Lagrangian manner. Turbulence of the carrier phase is obtained by using DNS. The particles are spherical, rigid and of a diameter smaller than the smallest scales of turbulence. Their density is very large in comparison to the density of the fluid. In this configuration the only force acting on the particles is the drag force. Volume fraction of particles is very small and inter-particle interactions are not considered. To model this type of flow, a stochastic approach is used where the fluid element accel- eration is modeled using stochastic Langevin equation. The originality in this work is an additional term in the stochastic equation which integrates the effect of the particles on the trajectory of fluid elements. To model this term, we proposed two types of modeling: a mean drag model which is defined using the mean velocities from the mean transport equations of the both phases and an instantaneous drag term which is written with the help of the Mesoscopic Eulerian Approach. The closure of the models is based on the Lagrangian auto- correlation function of the fluid velocity and on the transport equation of the fluid kinetic energies. The models are tested in terms of the fluid-particle correlations and fluid-particle turbulent drift velocity. The results show that the mean model, simple, takes into account the principal physical mechanism of turbulence modulation. However, practical closure problem is brought forward to the Lagrangian integral scale and the fluid kinetic energy of the fluid turbulence viewed by the particles
Dinh, Duy Cuong. « Development of a Detailed Approach to Model the Solid Pyrolysis with the Coupling Between Solid and Gases Intra-Pores Phenomena ». Electronic Thesis or Diss., Chasseneuil-du-Poitou, Ecole nationale supérieure de mécanique et d'aérotechnique, 2024. http://www.theses.fr/2024ESMA0029.
Texte intégralPyrolysis of wood is a crucial process in fire safety science because it affects the thermal decomposition and combustion behavior of materials. Wood, a composite of biopolymeric components (cellulose, hemicellulose and lignin) undergoes complex pyrolysis to yield solid char, tar and gases as it thermally decomposes. The pyrolysis process also changes some important characteristics of the sample (density, thermal conductivity, heat capacity, porosity, permeability, emissivity...) that evolve throughout the reaction. Understanding these transformations is crucial for the correct modeling of fire behavior and material response under different thermal conditions. Different final normalized mass between TGA and cone calorimeter experiments challenge existing solid reaction rate models, according to experimental studies. Current models often assume a reaction order of 1, which oversimplifies the complexity of wood pyrolysis and leads to inaccuracies when the reaction order differs from 1. To overcome these shortcomings, a brand new conversion-based model, called ”Virtual Initial Mass”, is proposed. This model, based on TGA data, calculates the reaction rate for each reaction in complicated pyrolysis mechanisms. It supports mechanisms with numerous sequential and competitive reactions and has been implemented in C++. The C++ code for this model is integrated with the DAKOTA toolkit to perform multi objective genetic algorithm (MOGA) optimization of kinetic parameters for multiple heating rates. This ”Virtual Initial Mass” model is integrated in the Porous material Analysis Toolbox based on OpenFOAM (PATO) an Open Source tool distributed by NASA. Further mass transfer, heat transfer, species conservation models in addition to material properties are created within this new framework. A computational model for secondary reactions (gas-phase reactions that produce secondary char) is implemented in PATO. These secondary reactions solidify the sample and distribute heat back into the system. Simulations of cone calorimeter tests are performed in 1D and 2D axisymmetric models to explore the influence of anisotropic wood properties, particularly the orientation of wood fibers. Comparison of models with and without secondary reactions demonstrates their role in heat distribution and secondary char production and points out the experimentally observed difference in normalized mass between TGA and cone calorimeter tests. The model is verified by comparison with experimental results to show that it can simulate the complicated behavior of wood pyrolysis as well as emphasizes the importance of reaction pathways, secondary reactions, heat transfer, mass transfer and intra-pore interaction phenomena
Chapitres de livres sur le sujet "Solid gas-coupling"
Wang, Shuai, Kun Luo, Chenshu Hu et Jianren Fan. « Investigation of Gas-Solid Flow Dynamics and Heat Transfer in Fluidized Beds by Using DEM-LES Coupling Approach ». Dans Springer Proceedings in Physics, 1023–35. Singapore : Springer Singapore, 2016. http://dx.doi.org/10.1007/978-981-10-1926-5_107.
Texte intégralOostveen, Jack P. « Mechanics of a Soil, a Dynamically Coupled Solid-Water-Gas System ». Dans Thermo-Hydromechanical and Chemical Coupling in Geomaterials and Applications, 121–29. Hoboken, NJ, USA : John Wiley & Sons, Inc., 2013. http://dx.doi.org/10.1002/9781118623565.ch10.
Texte intégralOostveen, Jack P. « Mechanics of a Soil, a Dynamically Coupled Solid-Water-Gas System ». Dans Thermo-Hydromechanical and Chemical Coupling in Geomaterials and Applications, 131–39. Hoboken, NJ, USA : John Wiley & Sons, Inc., 2013. http://dx.doi.org/10.1002/9781118623565.ch11.
Texte intégralOostveen, Jack P. « Mechanics of a Soil, a Dynamically Coupled Solid-Water-Gas System ». Dans Thermo-Hydromechanical and Chemical Coupling in Geomaterials and Applications, 113–20. Hoboken, NJ, USA : John Wiley & Sons, Inc., 2013. http://dx.doi.org/10.1002/9781118623565.ch9.
Texte intégralMicalizzi, Giuseppe, Mariosimone Zoccali, Emanuela Trovato et Luigi Mondello. « Untargeted and Targeted Analysis by Using Innovative and Automated SPME Methods Combined with Various Chromatographic Techniques ». Dans Evolution of Solid Phase Microextraction Technology, 249–68. The Royal Society of Chemistry, 2023. http://dx.doi.org/10.1039/bk9781839167300-00249.
Texte intégralMirabelli, Mario F. « Direct Coupling of SPME to Mass Spectrometry ». Dans Evolution of Solid Phase Microextraction Technology, 290–314. The Royal Society of Chemistry, 2023. http://dx.doi.org/10.1039/bk9781839167300-00290.
Texte intégralWeng, Lingang, Qinfeng Shi, Weiming Lu, Keji Qi, Qing Ye, Anfei Luo et Jinbiao Wang. « Pilot Study on Deep Denitrification from Municipal Solid Waste Incineration Flue Gas by Narrow Pulse Discharge Reaction Coupling with Wet Adsorption ». Dans Advances in Transdisciplinary Engineering. IOS Press, 2023. http://dx.doi.org/10.3233/atde230375.
Texte intégralMascrez, Steven, Damien Eggermont et Giorgia Purcaro. « SPME and Chromatographic Fingerprints in Food Analysis ». Dans Evolution of Solid Phase Microextraction Technology, 494–535. The Royal Society of Chemistry, 2023. http://dx.doi.org/10.1039/bk9781839167300-00494.
Texte intégralLi, Xin, et Yanjie Wei. « Numerical simulation for gas-injected cyclone separator by fluid-solid coupling algorithm ». Dans Advances in Energy Equipment Science and Engineering, 2035–40. CRC Press, 2015. http://dx.doi.org/10.1201/b19126-394.
Texte intégralCheng, YuanFang, et LingDong Li. « Fluid-Solid Coupling Numerical Simulation on Natural Gas Production from Hydrate Reservoirs by Depressurization ». Dans Advances in Natural Gas Technology. InTech, 2012. http://dx.doi.org/10.5772/38090.
Texte intégralActes de conférences sur le sujet "Solid gas-coupling"
Shi, Shengnan, Fanyu Zhang, Chao Wang, Bin Liu, Liang Xu et Jianwen Li. « Numerical Simulation of Gas-solid Coupling in Garbage Pneumatic Conveying System ». Dans 2024 IEEE 25th China Conference on System Simulation Technology and its Application (CCSSTA), 92–97. IEEE, 2024. http://dx.doi.org/10.1109/ccssta62096.2024.10691750.
Texte intégralSimonin, Olivier, et Kyle D. Squires. « On Two-Way Coupling in Gas-Solid Turbulent Flows ». Dans ASME/JSME 2003 4th Joint Fluids Summer Engineering Conference. ASMEDC, 2003. http://dx.doi.org/10.1115/fedsm2003-45739.
Texte intégralUribe, J., Richard J. A. Howard et M. Rabbitt. « Fluid-Solid coupling in advanced gas-cooled reactor thermohydraulics ». Dans THMT-12. Proceedings of the Seventh International Symposium On Turbulence, Heat and Mass Transfer Palermo, Italy, 24-27 September, 2012. Connecticut : Begellhouse, 2012. http://dx.doi.org/10.1615/ichmt.2012.procsevintsympturbheattransfpal.1350.
Texte intégralPeng, Wenshan, Xuewen Cao, Kun Xu, Jinjuan Li et Yin Fan. « Erosion regularities of gas pipelines based on the gas-solid two-way coupling method ». Dans MATHEMATICAL SCIENCES AND ITS APPLICATIONS. Author(s), 2017. http://dx.doi.org/10.1063/1.4971915.
Texte intégralPialat, Xavier, Olivier Simonin et Philippe Villedieu. « Direct Coupling Between Eulerian and Lagrangian Approaches in Turbulent Gas-Solid Flows ». Dans ASME 2006 2nd Joint U.S.-European Fluids Engineering Summer Meeting Collocated With the 14th International Conference on Nuclear Engineering. ASMEDC, 2006. http://dx.doi.org/10.1115/fedsm2006-98122.
Texte intégralHuang, Wei, Xiaoli Jin et Liying Wang. « One Way Fluid Solid Coupling Analysis of Gas Mask Based on ANSYS-CFX ». Dans 2016 6th International Conference on Mechatronics, Computer and Education Informationization (MCEI 2016). Paris, France : Atlantis Press, 2016. http://dx.doi.org/10.2991/mcei-16.2016.260.
Texte intégral« Optimization of small seeds cleaning equipment based on CFD-DEM gas-solid coupling ». Dans 2016 ASABE International Meeting. American Society of Agricultural and Biological Engineers, 2016. http://dx.doi.org/10.13031/aim.20162460132.
Texte intégralHu, Jipu, Yuyang Shen, Ruixiang Wang, Kuaiyuan Feng, Lei Lou et Hui Guo. « Multiphysics Coupling Analysis of an FCM-Fueled Gas-Cooled Microreactor ». Dans 2024 31st International Conference on Nuclear Engineering. American Society of Mechanical Engineers, 2024. http://dx.doi.org/10.1115/icone31-124442.
Texte intégralXu, Guohui, Jian Zhou, Mingjian Lu, Haipeng Geng, Yanhua Sun, Lie Yu, Lihua Yang et al. « Supporting Structure Performances Analysis of Heavy-Duty Gas Turbine Based on Fluid-Solid Coupling Method ». Dans ASME Turbo Expo 2015 : Turbine Technical Conference and Exposition. American Society of Mechanical Engineers, 2015. http://dx.doi.org/10.1115/gt2015-42098.
Texte intégralZhang, Ri, et Haixiao Liu. « Numerical Simulation of Solid Particle Erosion in a 90 Degree Bend for Gas Flow ». Dans ASME 2014 33rd International Conference on Ocean, Offshore and Arctic Engineering. American Society of Mechanical Engineers, 2014. http://dx.doi.org/10.1115/omae2014-23656.
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