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Transport properties of SiO 2 /H 2 O solid-gas system for industrial flue gas: A molecular dynamics study
- Source :
- International Journal of Heat and Mass Transfer. 110:723-729
- Publication Year :
- 2017
- Publisher :
- Elsevier BV, 2017.
-
Abstract
- In this study, two typical components in industrial flue gas (SiO 2 solid particle and H 2 O vapor) was selected as a solid-gas system, the transport properties were investigated by equilibrium molecular dynamics (EMD) simulation with three different concentrations of solid phase systems established over the actual temperature range (1000–1400 K) of industrial flue gas. The number of hydrogen bonds was counted and the radial distribution function in the system was obtained to analyze the microstructure of the system. The thermal conductivity, viscosity and diffusion coefficient were calculated and the effects of temperature and solid concentration on the transport properties were investigated. The predicted values of transport properties are in good agreement with the available experimental data. The results show that with the diffusion of water molecules, polar water molecules form hydrogen bonds with silica and other water molecules, and as the temperature increases, the average number of hydrogen bonds of water molecules decreases and the stability of the system decreases. Simultaneously, with the increase of temperature, the thermal conductivity and viscosity of the system increase, when the concentration of the solid phase in the system increases, both the thermal conductivity and the viscosity increase at the same temperature. This study improves the understanding of transport characteristics of industrial flue gas from the microscopic point of view, which is significant to the dust purification and waste heat recovery technologies.
- Subjects :
- Fluid Flow and Transfer Processes
Flue gas
Materials science
020209 energy
Mechanical Engineering
Diffusion
Thermodynamics
02 engineering and technology
Atmospheric temperature range
021001 nanoscience & nanotechnology
Condensed Matter Physics
Waste heat recovery unit
Viscosity
Molecular dynamics
Thermal conductivity
Phase (matter)
0202 electrical engineering, electronic engineering, information engineering
0210 nano-technology
Subjects
Details
- ISSN :
- 00179310
- Volume :
- 110
- Database :
- OpenAIRE
- Journal :
- International Journal of Heat and Mass Transfer
- Accession number :
- edsair.doi...........0d8f198471ca3fcd7b6314521b270eb4