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Vol 235
Pages:
10
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CREATION OF TEMPERATURE INHOMOGENITIES WITH THE USE OF PELTIER ELEMENT FOR THE MASS-EXCHANGE PROCESSES INTENSIFICATION OF THE OIL AND GAS INDUSTRY

Authors:
Yu. L. Yunusova1
V. G. Afanasenko2
About authors
  • 1 — Ufa State Petroleum Technical University
  • 2 — Ufa State Petroleum Technical University
Date submitted:
2018-09-22
Date accepted:
2018-11-08
Date published:
2019-02-25

Abstract

The intensification of technological processes in the oil and gas industry is an urgent task for industrial production. Improving the efficiency of the processes leads to a decrease in the consumption of materials by the apparatus and the cost of their manufacture, an improvement in the quality of the produced product, and simplifies the transportation and installation of equipment. To achieve these goals, a new highly efficient equipment is being developed based on the use of various physical and chemical phenomena, their combinations, and new technological approaches. One of the most effective ways to solve such problems is pulse impact on the materials being processed, in which inhomogeneities of the process driving force are artificially created. The challenge of intensifying the processes occurring during the direct contact of the phases is the need to influence the system being processed locally - in the area of the interface, since it is there that the substances transfer from one phase to another. The object of article's scientific research – mass-exchange process, which is most widespread in oil and gas technology. As a model, the process of liquid evaporation is chosen, on which the separation of mixtures by rectification is based – the main process of the oil and gas processing industry. The heterogeneity of the driving force of the mass transfer process was created using a thermoelectric converter, the principle of which is based on the Peltier effect, in a series of experiments. Such converters allow creation of higher temperature gradient and, consequently, a greater temperature heterogeneity in the investigated system compared with traditional resistance electric heaters at the same energy expenditure. The article discusses the influence of the temperature inhomogenities location on the efficiency of mass-exchange processes, specifically the evaporation process. In experimental studies, the evaporation rate was estimated by measuring the mass evaporation velocity of a liquid. It is noted that the creation of a temperature gradient on the free surface of the liquid phase using a Peltier element with a specific power of 1.8 kW/m 2 leads to a twofold intensification of the evaporation process.

10.31897/pmi.2019.1.10
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References

  1. Afanasenko V.G., Yunusova Yu.L. Development of methods for assessing the effectiveness of mass transfer processes. Mo-lodezhnyi nauchnyi vestnik. 2017. N 2 (14), p. 109-113 (in Russian).
  2. Akhmetov S.A. Technology and equipment for oil and gas processing. St. Petersburg: Nedra, 2006, p. 868 (in Russian).
  3. Bikchentaeva A.G. Surface phenomena and disperse systems. Ufa: Izd-vo UGNTU, 2004, p. 89 (in Russian).
  4. Brusentseva L.Yu., Kudryashova A.A. A brief guide to the physical and chemical values of some inorganic and organic com-pounds. Samara: OOO «Insoma-press», 2011, p. 68 (in Russian).
  5. Gorodetskii A.F., Kravchenko A.F., Samoilov E.M. Fundamentals of physics of semiconductors and semiconductor devices. Novosibirsk: Nauka, 1966, p. 350 (in Russian).
  6. Dmitriev A.V., Madyshev I.N. Development of new types of contact devices for the intensification of heat and mass exchange and increasing energy saving. Vestnik Kazanskogo tekhnologicheskogo universiteta. 2015. Vol. 18. N 8, p. 110-111.
  7. Draganov B.Kh., Borkhalenko Yu.A. Fundamentals of the discrete pulse energy input concept. Trudy Kubanskogo gosudar-stvennogo agrarnogo universiteta. 2013. N 42, p. 147-151 (in Russian).
  8. Zhurkin O.P., Chanyshev N.T., Zhurkina I.P. Practics on surface phenomena and dispersion systems. Ufa: Izd-vo UGNTU, 2011, p. 114 (in Russian).
  9. Zemtsov D.A. Development of thermal rectification columns in technologies for processing vegetable raw materials: Avtoref. dis.…kand. tekhn. nauk. Sibirskii gosudarstvennyi universitet nauki i tekhnologii. Krasnoyarsk, 2017, p. 20 (in Russian).
  10. Kasatkin A.G. Processes and devices of chemical technology. Moscow: OOO TID «Al'yans», 2004, p. 753 (in Russian).
  11. Kuzeev I.R., Naumkin E.A., Savicheva Yu.N., Popova S.V. Surface and surface phenomena. Ufa: Izd-vo «Neftegazovoe de-lo», 2008, p. 144 (in Russian).
  12. Promtov M.A. Machines and devices with pulsed energy impacts on the treated substances. Moscow: «Izdatel'stvo Mashi-nostroenie-1», 2004, p. 136 (in Russian).
  13. Sister V.G., Martynov Yu.V. Principles of improving the efficiency of heat and mass exchange processes. Kaluga: Izd-vo N.F.Bochkarevoi, 1998, p. 508 (in Russian).
  14. Stepykin A.V. Hydrodynamics and mass-exchange in a regular nozzle with built-in heat exchange modules: Avtoref. dis.…kand. tekhn. nauk. Tambovskii gosudarstvennyi tekhnicheskii universitet. Tambov, 2016, p. 16 (in Russian).
  15. Syrkin A.M., Movsumzade E.M. Surface phenomena and disperse systems in the oil and gas engineering. Ufa: Izd-vo UGNTU, 2005, p. 138 (in Russian).
  16. Tomilina T.A., Yunusova Yu.L., Ishbulatov A.V. The main methods of mass-exchange processes intensification. Sbornik materialov X Mezhdunarodnoi nauchno-prakticheskoi konferentsii «Aktual'nye problemy nauki i tekhniki – 2017». Vol. 2. UGNTU. Ufa, 2017, p. 58-59 (in Russian).
  17. Astrain D., Vián J.G., Albizua J. Computational model for refrigerators based on Peltier effect application. Applied Thermal Engineering. 2005. N 25, p. 3149-3162. https://doi.org/10.1016/j.applthermaleng.2005.04.003
  18. Dmitriev A.V., Makusheva O.S., Dmitrieva K.V., Nikolaev A.N. Contact mass exchanger to increase output of active tower units. Chemical and Petroleum Engineering. 2011. Vol. 47. N 5-6, p. 319-323.
  19. Dmitriev A.V., Dmitrieva O.S., Madyshev I.N. Determination of the mass-transfer coefficient in liquid phase in a stream-bubble contact device. Thermal Engineering. 2016. Vol. 63. N 9, p. 674-677.
  20. Erduran S., Villamanan R. Cool Argument: Engineering Students’ Written Arguments about Thermodynamics in the Context of the Peltier. Effect in Refrigeration. Educación Química. 2009. N 20, p. 119-125. https://doi.org/10.1016/S0187-893X(18)30018-1
  21. Harrson S. Santana, Geovanni B. Sanchez, Osvaldir P. Evaporation of excess alcohol in biodiesel in a microchannel heat ex-changer with Peltier module. Chemical Engineering Research and Design. 2017. N 124, p. 20-28. https://doi.org/ 10.1016/j.cherd.2017.05.022
  22. Nikolaev E.A., Ivanov S.P., Boev E.V., Afanasenko V.G., Shulaev N.S. History of development and current state of hydro-dynamic rotary mixers. Chemical and Petroleum Engineering. 2010. Vol. 46. N 7, p. 451-455.
  23. Jung D.H., Moon I.K., Jeong Y.H. Peltier AC calorimeter. Thermochimica Acta. 2002. N 391, p. 7-12. https://doi.org/10.1016/S0040-6031(02)00159-4
  24. Liao M., He Z., Jiang C. A three-dimensional model for thermoelectric generator and the influence of Peltier effect on the per-formance and heat transfer. Applied Thermal Engineering. 2018. N 133, p. 493-500. https://doi.org/10.1016/ j.applthermaleng.2018.01.080
  25. Monfared B. Simulation of solid-state magnetocaloric refrigeration systems with Peltier elements as thermal diodes. Interna-tional Journal of Refrigeration, 2017. N 74, p. 324-332. https://doi.org/10.1016/j.ijrefrig.2016.11.007
  26. Metzger T., Huebener R.P. Modelling and cooling behaviour of Peltier cascades. Cryogenics. 1999. N 39, p. 235-239. https://doi.org/10.1016/S0011-2275(99)00019-3
  27. Nikolaev E.A., Afanasenko V.G., Boev E.V. Experimental investigations of fuel blending process in rotary blenders. Chemi-cal and Petroleum Engineering. 2014. Vol. 50. № 3-4, p. 162-168.
  28. Vries W., H.Theo van der Meer. Application of Peltier thermal diodes in a magnetocaloric heat pump. Applied Thermal Engi-neering. 2017. N 111, p. 377-386. https://doi.org/10.1016/j.applthermaleng.2016.09.103
  29. Wen S., Mingcong, M.Deng. Operator-based robust nonlinear control and fault detection for a Peltier actuated thermal pro-cess. Mathematical and Computer Modelling. 2013. N 57, p. 16-29. https://doi.org/10.1016/j.mcm.2011.06.021
  30. UDC 622.24

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