ADSORPTION OF BENZENE, ACETONE AND CARBON TETRACHLORIDE VAPORS ON MICROPOROUS CARBON ADSORBENT FAS-3

  • Dmitriy S. Zaytsev Tver State Technical University
  • Andrey V. Tvardovskiy Tver State Technical University
  • Andrey V. Shkolin Institute of Physical Chemistry and Electrochemistry
  • Anatoliy A. Fomkin Institute of Physical Chemistry and Electrochemistry
Keywords: adsorption, adsorbent, benzene, acetone, carbon tetrachloride, microporous carbon adsorbent

Abstract

In this paper, the study of the adsorption of organic matter vapors (benzene, carbon tetrachloride, acetone) on the microporous carbon adsorbent FAS-3 in the region of pressures from 0.1 PA to 0.1 MPa and temperatures from 293 to 313 K was conducted, which showed sufficiently high adsorption characteristics of the used adsorbent in comparison with traditional absorbers. Microporous carbon adsorbent FAS-3 is quite new and still not fully understood. The purpose of this study was to determine the parameters of the adsorbent FAS-3, as well as the study of the processes of vapor adsorption of various organic substances on it. The microporous carbon adsorbent FAS-3, obtained on the basis of furfural, was used in the work. Obtaining spherical granules of the adsorbent FAS-3 was carried out in the result of liquid molding of a copolymer of furfural and epoxy resin on the basis of a fundamentally new process of combining the stages of blending monomer, molding the mixture in spherical product of the cured pellets. The activation of spherical grains of FAS-3 was carried out in a rotary kiln by a mixture of water vapor and carbon dioxide at a temperature of 850-900°C to burning that was consistent with the development of porosity in the adsorbent. The equilibrium values of vapor adsorption of substances on FAS-3 were measured on the gravimetric vacuum unit developed in the Institute of Physical Chemistry and Electrochemistry of the Russian Academy of Sciences. Regeneration of the adsorbent was carried out for 6 h at a temperature of 623 K to a pressure of 0.1 Pa. The maximum absolute measurement error was ± 0.01 mmol / g with 95% confidence. Measurement of vapor pressure of organic substances within 0.13 Pa-0.13 MPa was carried out by absolute pressure gauges M10, M1000, developed and manufactured in the Institute of Physical Chemistry and Electrochemistry of the Russian Academy of Sciences. The pressure measurement error by the manometer M10 in the range of 0.13 to 1330 Pa was ±0.066 Pa, and the manometer M1000 in the range from 13 Pa to 130 kPa was ±4.0 Pa.

References

Krasilnikova O.K., Kazbanov N.S., Guryanov V.V. Temperature effect on phenol adsorption by microporous activated carbons of FAS type. Fizikokhim. Pov-ti Zaschita Mater. 2009. V. 45. N 5. P. 467-473 (in Russian). DOI: 10.1134/S2070205109050037.

Fomkin A.A., Sinitsyn V.A., Guryanov V.V. Hydrogen adsorption in nanoporous carbon adsorbents obtained by thermochemical synthesis based on furfural. Kolloid. Zhurn. 2008. V. 70. N 3. P. 408-412 (in Russian).

Fomkin A.A., Menschikov I.E., Pribylov A.A., Guryanov V.V., Shkolin A.V., Zaytsev D.S., Tvardovskiy A.V. Methane adsorption on a microporous carbon ad-sorbent with a wide pore size distribution. Kolloid. Zhurn. 2017. V. 79. N 1. P. 96-103 (in Russian).

Menschikov I.E., Fomkin A.A., Shkolin A.V., Strizhenov E.M., Zaytsev D.S., Tvardovskiy A.V. Energy of methane adsorption on microporous carbon adsorbents. Fizikokhim. Pov-ti Zaschita Mater. 2017. V. 53. N 5. P. 459-464 (in Russian).

Ibragimova R.I., Grebennikov S.F., Guryanov V.V., Vorobyev-Desyatovskiy N.V., Kubyshkin S.A. Characterization of porous structure of carbon adsorbents with a wide distribution of micropore sizes. Zhurn. Fizich. Khim. 2012. V. 86. N 5. P. 941-946 (in Russian). DOI: 10.1134/S0036024412050147.

Kharitonova A.G., Krasilnikova O.K., Vartapetyan R.Sh., Bulanova A.V. Adsorption of some nitrogen-containing compounds and benzene derivatives from aqueous solutions on active coals. Kolloid. Zhurn. 2005. V. 67. N 3. P. 416-420 (in Russian). DOI: 10.1007/s10595-005-0107-3.

Zivadze A.Yu., Guryanov V.V., Petukhova G.A. Analysis of the microporous structure of carbon adsorbents in the framework of the theory of bulk filling of micropores. Fizikokhim. Pov-ti Zaschita Mater. 2011. V. 47. N 5. P. 508-516 (in Russian).

Petukhova G.A. Analysis of the microporous structure of carbon adsorbents in the framework of the theory of volume filling of micropores. Fizikokhim. Pov-ti Zaschita Mater. 2008. V. 44. N 2. P. 170-176 (in Russian). DOI: 10.1134/S0033173208020082.

Mukhin V.M. The role of active coals in the ecology of oil and gas production, transportation and processing. Bezopasnost Truda Prom-ti. 2018. N 3. P. 29-34 (in Russian). DOI: 10.24000/0409-2961-2018-3-29-34.

Mukhin V.M. Environmental aspects of the use of active coals. Ekologiya Prom-t’ Rossii. 2014. N 12. P. 52-56 (in Russian).

Menschikov I.E., Fomkin A.A., Zivadze A.Yu., Shkolin A.V., Strizhenov E.M., Pulin A.L. Methane adsorption on microporous carbon adsorbents at supercritical temperatures. Fizikokhim. Pov-ti Zaschita Mater. 2015. V. 51. N 4. P. 345-350 (in Russian). DOI: 10.1134/S2070205115040243.

Shkolin A.V., Fomkin A.A., Sinitsyn V.A. Methane adsorption on the microporous carbon adsorbent AUK. Kolloid. Zhurn. 2008. V. 70. N 6. P. 849-854 (in Russian). DOI: 10.1134/S1061933X08060173.

Nabiulin V.V., Fomkin A.A., Tvardovskiy A.V. Adsorption of carbon tetrachloride on microporous carbon adsorbent AR-V. Fizikokhim. Pov-ti Zaschita Mater. 2011. V. 47. N 2. P. 136-139 (in Russian).

Shkolin A.V., Fomkin A.A., Yakovlev B.U. Analysis izoster adsorption of gases and vapors on microporous adsorbents. Izv. Akad. Nauk. Ser. Khim. 2007. N 3. P. 380-385 (in Russian). DOI: 10.1007/s11172-007-0064-6.

Fomkin A.A., Zivadze A.Yu., Shkolin A.V., Menschikov I.E., Pulin A.L. Study of adsorption and accumulation of methane on a microporous carbon adsorbent in a wide temperature interval. Fizikokhim. Pov-ti Zaschita Mater. 2016. V. 52. N 5. P. 456-464 (in Russian). DOI: 10.1134/S2070205116050075.

Yakovlev V.Yu., Fomkin A.A., Tvardovski A.V. Adsorption and deformation phenomena at the interaction of CO2 and microporous carbon adsorbent. J. Colloid Interf. Sci. 2003. V. 268. P. 33-36. DOI: 10.1016/S0021-9797(03)00696-9.

Yakovlev V.Yu., Tvardovski A.V., Fomkin A.A. Adsorption and deformation phenomena at the interaction of N2 and microporous carbon adsorbent. J. Colloid Interf. Sci. 2004. V. 280. P. 305-308. DOI: 10.1016/j.jcis.2004.07.029.

Tvardovskiy A.V. Sorbent deformation. Amsterdam, Boston: Elsevier (Holland), Academic Press (USA). 2006. 286 p.

Tvardovskiy A.V., Nabiulin V.V., Fomkin A.A., Shkolin A.V., Zaytsev D.S. Sorbostriction of AR - V carbon adsorbent in organic vapor adsorption. Chem. Eng. Trans-act. 2017. V. 57. P. 1483-1488.

Vargaftik N.B. Reference book on thermophysical properties of gases and liquids. M.: Nauka. 1972. 720 p. (in Russian).

Burdun G.D., Markov B.N. Fundamentals of metrology. M.: Izd-vo Standartov. 1985. 256 p. (in Russian).

Published
2019-07-21
How to Cite
Zaytsev, D. S., Tvardovskiy, A. V., Shkolin, A. V., & Fomkin, A. A. (2019). ADSORPTION OF BENZENE, ACETONE AND CARBON TETRACHLORIDE VAPORS ON MICROPOROUS CARBON ADSORBENT FAS-3. ChemChemTech, 62(7), 52-57. https://doi.org/10.6060/ivkkt.20196207.5877
Section
CHEMISTRY (inorganic, organic, analytical, physical, colloid and high-molecular compounds)

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