УДК: 535.211
Temperature dynamics of a transparent nanoliquid acted on by a periodic light field
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Publication in Journal of Optical Technology
Ливашвили А.И., Костина Г.В., Якунина М.И. Динамика температуры прозрачной наножидкости, находящейся под воздействием периодического светового поля // Оптический журнал. 2013. Т. 80. № 2. С. 71–74.
Livashvili A.I., Kostina G.V., Yakunina M.I. Temperature dynamics of a transparent nanoliquid acted on by a periodic light field [in Russian] // Opticheskii Zhurnal. 2013. V. 80. № 2. P. 71–74.
A. I. Livashvili, G. V. Kostina, and M. I. Yakunina, "Temperature dynamics of a transparent nanoliquid acted on by a periodic light field," Journal of Optical Technology. 80(2), 124-126 (2013). https://doi.org/10.1364/JOT.80.000124
The thermal action of the radiation that appears as a result of the Dufour effect when a transparent disperse medium is irradiated is theoretically analyzed. Analytical expressions are obtained that describe the dynamics of the nanoparticle concentration and the temperature of the medium.
Dufour effect, disperse liquid-phase medium, concentration dynamics, additional temperature
OCIS codes: 260.0260, 350.0350
References:1. V. I. Terekhov, S. V. Kalinin, and V. V. Lemanov, “Thermal-transport mechanism in nanoliquids. The current state of the problem (Review),” Teplofiz. Aéromekh. 17, No. 1, 2 (2010).
2. V. Ya. Rudyak and A. A. Belkin, “Modeling the transport coefficients of nanoliquids,” Nanosis. Fiz. Khim. Matem. 1, No. 1, 157 (2010).
3. N. Tabiryan and W. Luo, “Soret feedback in thermal diffusion of suspension,” Phys. Rev. 57, 4431 (1998).
4. De Groot and P. Mazur, Nonequilibrium Thermodynamics (Mir, Moscow, 1964).
5. A. A. Afanas’ev, A. I. Rubinov, S. Yu. Mikhnevich, and I. E. Ermolaev, “Four-wave mixing in a liquid suspension of transparent dielectric microspheres,” Zh. Eksp. Teor. Fiz. 128, 451 (2005) [JETP 101, 389 (2005)].