Mathematical modeling of the production of magnetic nanoparticles through counter-flow non-premixed combustion for biomedical applications (Publication with Expression of Concern)

被引:6
作者
Akbari, Shahin [1 ]
Hasanvand, Nima [1 ]
Sadeghi, Sadegh [2 ]
Bidabadi, Mehdi [1 ]
Xiong, Qingang [3 ]
机构
[1] Iran Univ Sci & Technol, Tehran, Iran
[2] Iran Univ Sci & Technol, Dept Mech Engn, Tehran, Iran
[3] Gen Motors Corp, IT Innovat Ctr, Warren, MI 48092 USA
关键词
Magnetic nanoparticles; Non-premixed combustion; Mathematical modeling; Counter-flow configuration; Thermophoretic force; THERMOPHORESIS; PARTICLES;
D O I
10.1108/HFF-09-2020-0610
中图分类号
O414.1 [热力学];
学科分类号
摘要
Purpose - The widespread usage of magnetic nanoparticles (MNPs) requires their efficient synthesis during combustion process. This study aims to present a mathematical model for the oxidation of MNPs in a counter-flow non-premixed combustion system to produce MNPs, where the key sub-processes during the oxidation reaction are involved. Design/methodology/approach - To accurately describe structure of flame and determine distributions of temperature and mass fractions of both reactants and products, equations of energy and mass conservations were solved based on the prevailing assumptions that three regions, i.e. preheating, reaction and oxidizer zones exist. Findings - The numerical simulation was first validated against experimental data and characteristics of the combustion process are discussed. Eventually, the influences of crucial parameters such as reactant Lewis numbers, strain rate ratio, particle size, inert gas and thermophoretic force on structure of flame and combustion behavior were examined. The results show that maximum flame temperature can achieve 2,205 K. Replacing nitrogen with argon and helium as carrier gases can increase flame temperature by about 27% and 34%, respectively. Additionally, maximum absolute thermophoretic force was found at approximately 9.6 x 10(-8) N. Originality/value - To the best of authors' knowledge, this is the first time to numerically model the preparation of MNPs in a counter-flow non-premixed combustion configuration, which can guide large-scale experimental work in a more effective way.
引用
收藏
页码:2436 / 2461
页数:26
相关论文
共 44 条
[1]   Radiolytic Formation of Fe3O4 Nanoparticles: Influence of Radiation Dose on Structure and Magnetic Properties [J].
Abedini, Alam ;
Daud, Abdul Razak ;
Hamid, Muhammad Azmi Abdul ;
Othman, Norinsan Kamil .
PLOS ONE, 2014, 9 (03)
[2]   Analytical modeling of lycopodium-propane dual-fuel combustion system in premixed mode in counter-flow configuration [J].
Akbari, Shahin ;
Tashakori, Saeed ;
Ranjbar, Ali Mohammad ;
Jahanshahi, Javad Afshar ;
Sadeghi, Sadegh ;
Bidabadi, Mehdi ;
Xu, Fei .
RENEWABLE ENERGY, 2021, 165 :783-798
[3]  
American Elements, 2019, ADV MAT MAN
[4]   The thermophoresis of solids in gases [J].
Bakanov, SP .
PMM JOURNAL OF APPLIED MATHEMATICS AND MECHANICS, 2005, 69 (05) :767-772
[5]  
Balasubramanian C., 2020, NANOTECHNOLOGY ENERG, P73, DOI 10.1007/978-3-030-33774-2_3
[6]  
Barthelmy D., 2021, MINERALOGY DATABASE
[7]   Low temperature synthesis of magnetite and maghemite nanoparticles [J].
Bhagwat, Shrikant ;
Singh, Hema ;
Athawale, Anjali ;
Hannoyer, Beatrice ;
Jouen, Samuel ;
Lefez, Benoit ;
Kundaliya, Darshan ;
Pasricha, Renu ;
Kulkarni, Shailaja ;
Ogale, Satishchandra .
JOURNAL OF NANOSCIENCE AND NANOTECHNOLOGY, 2007, 7 (12) :4294-4302
[8]   Nanoparticle production by plasma [J].
Bica, I .
MATERIALS SCIENCE AND ENGINEERING B-SOLID STATE MATERIALS FOR ADVANCED TECHNOLOGY, 1999, 68 (01) :5-9
[9]   Thermophoresis effect on volatile particle concentration in micro-organic dust flame [J].
Bidabadi, Mehdi ;
Natanzi, Amir Hesam Ameri ;
Mostafavi, S. Alireza .
POWDER TECHNOLOGY, 2012, 217 :69-76
[10]   Trapping of DNA by thermophoretic depletion and convection [J].
Braun, D ;
Libchaber, A .
PHYSICAL REVIEW LETTERS, 2002, 89 (18) :1-188103