International Journal of Physics
ISSN (Print): 2333-4568 ISSN (Online): 2333-4576 Website: https://www.sciepub.com/journal/ijp Editor-in-chief: B.D. Indu
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International Journal of Physics. 2023, 11(5), 253-260
DOI: 10.12691/ijp-11-5-4
Open AccessArticle

Calculation of Fluoroalkylamines Transport Coefficients Used in Agriculture and Medicine in the Context of Plasma Incineration

Ibrahim Pafadnam1, 2, , Wêpari Charles Yaguibou1, Nièssan Kohio1, Adjigkiga Banouga1, Abdoul Karim Kagoné1, Zacharie Koalaga1 and Pascal André2

1LAME, Université Joseph KI-ZERBO, BP 7021, Ouagadougou BURKINA FASO

2Université Clermont Auvergne, CNRS, Laboratoire de Physique de Clermont, F-63000 Clermont-Ferrand, FRANCE

Pub. Date: October 27, 2023

Cite this paper:
Ibrahim Pafadnam, Wêpari Charles Yaguibou, Nièssan Kohio, Adjigkiga Banouga, Abdoul Karim Kagoné, Zacharie Koalaga and Pascal André. Calculation of Fluoroalkylamines Transport Coefficients Used in Agriculture and Medicine in the Context of Plasma Incineration. International Journal of Physics. 2023; 11(5):253-260. doi: 10.12691/ijp-11-5-4

Abstract

Knowledge of FluoroalkylAmines-air mixtures thermal plasmas transport coefficients is important for plasma performance characterization and transport phenomena modelization in the plasma. In this work, these FluoroalkylAmines-air mixture plasmas transport properties are calculated in a temperature range of 1000 K to 20 000 K at atmospheric pressure and local thermodynamic equilibrium (LTE). It appears from these evaluations that the percentage of air in the mixture has neglected influence on the electrical conductivity of the plasmas. For temperatures higher than 13 000 K, we have noticed a decrease of the thermal conductivity and the dynamic viscosity with the percentage of air in the mixture plasmas. The different high levels observed on the thermal conductivity graph is conform to the dissociation reactions of molecules and ionization reactions of atoms.

Keywords:
fluoroalkylamines incineration plasma transport coefficients

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References:

[1]  J. Wang, P. Zheng and H. Cui. Plasma Gasification Melting/Waste Treatment System. Advances in New and Renewable Energy, vol. 8, n° 5, pp. 391-395.
 
[2]  I. Pafadnam, N. Kohio, W. C. Yaguibou, A. K. Kagoné, Z. Koalaga and P. André. Study of the Thermodynamic Properties of Thermal Plasmas of Fluoroalkylamine-Air Mixtures. Advances in Materials Physics and Chemistry, 13, 85-100.
 
[3]  P. André and Z. Koalaga. Composition of a thermal plasma formed from PTFE with copper in non-oxidant atmosphere. Part I: definition of a test case with the SF6. Material Processes, 14, 279 (2010).
 
[4]  A. Yang, Y. Liu, B Sun, X. Wang, Y Cressault, L. Zhong, M. Rong, Y. Wu and C. Niu. Thermodynamic properties and transport coefficients of high-temperature CO2 thermal plasmas mixed with C2F4. J. Phys. D: Appl. Phys. 48 495202.
 
[5]  J. Zhang, C. Lu, Y. Guan, and W Liu. Thermodynamic properties and transport coefficients of air thermal plasmas mixed with ablated vapors of Cu and polytetrafluoroethylene. Citation: Phys. Plasmas 22, 103518.
 
[6]  F. Bendjebbar, P. André, M. Benebakkar, D. Rochette, S. Flazi and D. Vacher. Plasma Formed in Argon, Acid Nitric and Water Used in Industrial ICP Torches. Plasma Sciences and Technology, Vol.14, No.8, p 683-692.
 
[7]  P. André, J. Aubreton, Y. Barinov, M. F. Elchinger, P. Fauchais, G. Faure, V. Kaplan, A. Lefort, V. Rat and S. Shkol’nik. Theoretical study of column of discharge with liquid nonmetallic (tap water) electrodes in air at atmospheric pressure. J. Phys. D: Appl. Phys, 35, 1846–1854. (2002).
 
[8]  P. André. Etude de la composition et des propriétés thermodynamiques des plasmas thermiques à l’équilibre et hors d’équilibre thermodynamique. Thèse de doctorat, Université Blaise Pascal (France). (1995).
 
[9]  Z. Koalaga. Contribution à l’étude expérimentale et théorique des plasmas d’arcs électriques laminés. Thèse de doctorat, Université Blaise Pascal, Clermont Fd, France. (1991).
 
[10]  D. Vacher. Détection, en temps réel, d’éléments métalliques présents dans les rejets atmosphériques industriels par torche à plasma à couplage inductif. Thèse de doctorat, Université Blaise Pascal (France). (2001).
 
[11]  S. Cayet et M. Dudeck. Equilibre chimique dans les mélanges gazeux en déséquilibre thermique. J. Phys. III France, 6, 403–420. (1996).
 
[12]  I. Pafadnam, N. Kohio, W. C. Yaguibou, A. K. Kagoné, Z. Koalaga et P. André. Étude de la composition chimique des fluoroalkylamines utilisés en agriculture et en médecine dans le cadre de l’incinération par plasma entre 500 K et 20.000 K. Journal International de Technologie, de l’Innovation, de la Physique, de l’Energie et de l'Environnement. vol. 8, n°1, 1.
 
[13]  E. Schmitt, B. Commare, A. Panossian, J.-P. Vors, S. Pazenok, F.R. Leroux. Synthesis of Mono- and Bis (fluoroalkyl) pyrimidines from FARs, Fluorinated Acetoacetates, and Malononitrile Provides Easy Access to Novel High-Value Pyrimidine Scaffolds. Chemistry - A European Journal, vol. 24, n° %16, pp. 1311-1316.
 
[14]  S. Chapman. The kinetic theory of a gas constituted of spherically symmetrical molecules. Philosophical Transactions of the Royal Society A (London), 211, 433-483. (1912).
 
[15]  S. Chapman. On the Law of Distribution of Molecular Velocities, and on the Theory of Viscosity and Thermal Conduction, in a Non-Uniform Simple Monatomic Gas. Philosophical Transactions of the Royal Society A (London), 216, 279-348. (1916).
 
[16]  S. Chapman. Philosophical Transactions of the Royal Society A (London), 217, 115. (1917).
 
[17]  R. S. Devoto. Transport properties of ionized monoatomic gases. Physics of Fluids, 9, 6, 1230-1240. (1966).
 
[18]  R. S. Devoto. Simplified expressions for the transport properties of ionized monoatomic gases. Physics of Fluids, 10, 10, 2105-2112. (1967).
 
[19]  J. O. Hirschfelder, C. F. Curtiss and B. R. Byron. Molecular theory of gases and liquids. (New York, Wiley). (1964).
 
[20]  C. Muckenfuss et C. F. Curtiss, J. Chem. Phys., 29 :1273. (1958).
 
[21]  H. Ouajji, B. Cheminat et P. Andanson. Composition and conductivity of a copper-air plasma. J. Phys. D : Appl. Phys, 19, 1903–1916. (1986).
 
[22]  M. Capitelli. Transport properties of partially ionized gases. Journal de Physique Colloques, 38 (C3), pp.C3-227-C3-237. <10.1051/jphyscol :1977325>. <jpa00217113>. (1977).
 
[23]  P. André, L. Brunet, W. Bussière, J. Caillard, J.M. Lombard, and J.P. Picard. Transport coefficients of plasmas consisting of insulator vapours Application to PE, POM, PMMA PA66 and PC. Eur. Phys. J. Appl. Phys. 25, 169–182. (2004).
 
[24]  K. S. Yun, S. Weissman and E. A. Mason. Phys. Fluids, 5:672. (1962).
 
[25]  Y Cressault, V Connord, H Hingana, Ph Teulet, and A. Gleizes. Transport properties of CF3 I thermal plasmas mixed with CO2, air or N2 as an alternative to SF6 plasmas in high-voltage circuit breakers. J. Phys. D: Appl. Phys. 44 495202. (2011).
 
[26]  P. D. Neufeld, A. R. Janzen et R. A. Aziz. Empirical Equations to Calculate 16 of the Transport Collision Integrals for the Lennard Jones (12–6) Potential. J. Chem. Phys. 57, 1100.
 
[27]  T. Kihara, M.H. Taylor, J.O. Hirschfelder. Phys. Fluids 3, 715. (1960).
 
[28]  E. A. Mason, R. J. Munn et F. J. Smith. Transport coefficients of ionized gases. Physics of Fluids, 10, 8, 1827-1832. (1967).
 
[29]  R. S. Devoto. Transport coefficients of ionized argon. Physics of Fluids, 16, 5, 616-623. (1973).
 
[30]  M. Capitelli, G. Colonna, C. Gorse et A. D’Angola. Transport properties of high temperature air in local thermodynamic equilibrium. Eur. Phys. J. D 11, 279–289. (2000).
 
[31]  M. I. Boulos, P. Fauchais, E. Pfender. Thermal plasmas: fundamentals and applications, Volume 1. Plenum Press, New York.
 
[32]  M.F. Elchinger, B. Pateyron, G. Delluc et P. Fauchais. Calculs des proprétés thermodynamiques et de transport des plasmas Ar-N2 et Ar-NH3 à la pression atmosphérique. Journal de Physique Colloques, 51 (C5), pp.C5-3-C5-10. 10.1051/jphyscol:1990501. jpa-00230798. (1990).