Porous medium 3D flow simulation of contrast media washout in cardiac MRI reflects myocardial injury

2019 ◽  
Vol 82 (2) ◽  
pp. 775-785
Author(s):  
Leili Riazy ◽  
Tobias Schaeffter ◽  
Marc Olbrich ◽  
Johannes Schueler ◽  
Florian Knobelsdorff‐Brenkenhoff ◽  
...  
2021 ◽  
Vol 345 ◽  
pp. 00015
Author(s):  
Matěj Jeřábek ◽  
Michal Volf ◽  
Daniel Duda

The article describes a numerical simulation of flow in the cooling system of an electromagnetic calorimeter by analysing the temperature and pressure fields. Two fundamentally different approaches were used to analyse the pressure field - analytical 1D calculation and numerical 3D flow simulation. The article contains a detailed evaluation and description of individual analyses using the commercial software ANSYS 2020 R1.


Author(s):  
M Sajedi ◽  
SA Gandjalikhan Nassab ◽  
E Jahanshahi Javaran

Based on an effective energy conversion method between flowing gas enthalpy and thermal radiation, a three-layered type of porous heat exchanger (PHE) has been proposed. The PHE has one high temperature (HT) and two heat recovery (HR1 and HR2) sections. In HT section, the enthalpy of gas flow converts to thermal radiation and the opposite process happens in HR1 and HR2. In each section, a 2-D rectangular porous medium which is assumed to be absorbing, emitting and scattering is presented. For theoretical analysis of the PHE, the gas and solid phases are considered in non-local thermal equilibrium and separate energy equations are used for these two phases. Besides, in the gas flow simulation, the Fluent code is used to obtain the velocity distribution in the PHE from inlet to outlet section. For thermal analysis of the PHE, the coupled energy equations for gas and porous layer at each section are numerically solved using the finite difference method. In the computation of radiative heat flux distribution, the radiative transfer equation (RTE) is solved by the discrete ordinates method (DOM). The effects of scattering albedo, optical thickness, particle size of porous medium and inlet gas temperature on the efficiency of PHE are explored. Numerical results show that this type of PHE has high efficiency especially when the porous layers have high optical thickness. The present results are compared with those reported theoretically by other investigators and reasonable agreement is found.


2009 ◽  
Vol 18 ◽  
pp. S214-S215
Author(s):  
M.C. Leung ◽  
D.T.L. Wong ◽  
R. Das ◽  
K. Soon ◽  
G. Chacko ◽  
...  

2005 ◽  
Author(s):  
Nobuyuki Yomoda ◽  
Masahiko Kubo ◽  
Norihiko Watanabe

2014 ◽  
Vol 2014.89 (0) ◽  
pp. _9-1_
Author(s):  
Koichiro TAKAGI ◽  
Masayuki KANEDA ◽  
Kazuhiko SUGA

2011 ◽  
Vol 44 ◽  
pp. 16
Author(s):  
Erke Arıbaş ◽  
Şenol Pişkin ◽  
M. Serdar Çelebi
Keyword(s):  

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