Numerical Investigation of the Deformable Porous Media Treated by the Intermittent Microwave
A 2D axi-symmetric theoretical model of dielectric porous media in intermittent microwave (IMW) thermal process was developed, and the electromagnetic energy, multiphase transport, phase change, large deformation, and glass transition were taken into consideration. From the simulation results, the m...
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doaj-49113311569c4252bf031c29375b28e82021-04-26T23:02:52ZengMDPI AGProcesses2227-97172021-04-01975775710.3390/pr9050757Numerical Investigation of the Deformable Porous Media Treated by the Intermittent MicrowaveTianyi Su0Wenqing Zhang1Zhijun Zhang2Xiaowei Wang3Shiwei Zhang4School of Mechanical Engineering and Automation, Northeastern University, Shenyang 110004, ChinaSchool of Mechanical Engineering and Automation, Northeastern University, Shenyang 110004, ChinaSchool of Mechanical Engineering and Automation, Northeastern University, Shenyang 110004, ChinaSchool of Mechanical Engineering and Automation, Northeastern University, Shenyang 110004, ChinaSchool of Mechanical Engineering and Automation, Northeastern University, Shenyang 110004, ChinaA 2D axi-symmetric theoretical model of dielectric porous media in intermittent microwave (IMW) thermal process was developed, and the electromagnetic energy, multiphase transport, phase change, large deformation, and glass transition were taken into consideration. From the simulation results, the mass was mainly carried by the liquid water, and the heat was mainly carried by liquid water and solid. The diffusion was the dominant mechanism of the mass transport during the whole process, whereas for the heat transport, the convection dominated the heat transport near the surface areas during the heating stage. The von Mises stress reached local maxima at different locations at different stages, and all were lower than the fracture stress. A material treated by a longer intermittent cycle length with the same pulse ratio (PR) tended to trigger the phenomena of overheat and fracture due to the more intense fluctuation of moisture content, temperature, deformation, and von Mises stress. The model can be extended to simulate the intermittent radio frequency (IRF) process on the basis of which one can select a suitable energy source for a specific process.https://www.mdpi.com/2227-9717/9/5/7572D theoretical modelintermittent microwave (IMW) thermal processintermittent radio frequency (IRF) thermal processthe Peclet numberlarge deformationglass transition |
collection |
DOAJ |
language |
English |
format |
Article |
sources |
DOAJ |
author |
Tianyi Su Wenqing Zhang Zhijun Zhang Xiaowei Wang Shiwei Zhang |
spellingShingle |
Tianyi Su Wenqing Zhang Zhijun Zhang Xiaowei Wang Shiwei Zhang Numerical Investigation of the Deformable Porous Media Treated by the Intermittent Microwave Processes 2D theoretical model intermittent microwave (IMW) thermal process intermittent radio frequency (IRF) thermal process the Peclet number large deformation glass transition |
author_facet |
Tianyi Su Wenqing Zhang Zhijun Zhang Xiaowei Wang Shiwei Zhang |
author_sort |
Tianyi Su |
title |
Numerical Investigation of the Deformable Porous Media Treated by the Intermittent Microwave |
title_short |
Numerical Investigation of the Deformable Porous Media Treated by the Intermittent Microwave |
title_full |
Numerical Investigation of the Deformable Porous Media Treated by the Intermittent Microwave |
title_fullStr |
Numerical Investigation of the Deformable Porous Media Treated by the Intermittent Microwave |
title_full_unstemmed |
Numerical Investigation of the Deformable Porous Media Treated by the Intermittent Microwave |
title_sort |
numerical investigation of the deformable porous media treated by the intermittent microwave |
publisher |
MDPI AG |
series |
Processes |
issn |
2227-9717 |
publishDate |
2021-04-01 |
description |
A 2D axi-symmetric theoretical model of dielectric porous media in intermittent microwave (IMW) thermal process was developed, and the electromagnetic energy, multiphase transport, phase change, large deformation, and glass transition were taken into consideration. From the simulation results, the mass was mainly carried by the liquid water, and the heat was mainly carried by liquid water and solid. The diffusion was the dominant mechanism of the mass transport during the whole process, whereas for the heat transport, the convection dominated the heat transport near the surface areas during the heating stage. The von Mises stress reached local maxima at different locations at different stages, and all were lower than the fracture stress. A material treated by a longer intermittent cycle length with the same pulse ratio (PR) tended to trigger the phenomena of overheat and fracture due to the more intense fluctuation of moisture content, temperature, deformation, and von Mises stress. The model can be extended to simulate the intermittent radio frequency (IRF) process on the basis of which one can select a suitable energy source for a specific process. |
topic |
2D theoretical model intermittent microwave (IMW) thermal process intermittent radio frequency (IRF) thermal process the Peclet number large deformation glass transition |
url |
https://www.mdpi.com/2227-9717/9/5/757 |
work_keys_str_mv |
AT tianyisu numericalinvestigationofthedeformableporousmediatreatedbytheintermittentmicrowave AT wenqingzhang numericalinvestigationofthedeformableporousmediatreatedbytheintermittentmicrowave AT zhijunzhang numericalinvestigationofthedeformableporousmediatreatedbytheintermittentmicrowave AT xiaoweiwang numericalinvestigationofthedeformableporousmediatreatedbytheintermittentmicrowave AT shiweizhang numericalinvestigationofthedeformableporousmediatreatedbytheintermittentmicrowave |
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