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Subthreshold Discharge in a Microwave Beam as the Basis of a Plasmachemical Reactor for Cleaning Urban Air from Excess Hydrogen Sulfide

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Abstract

The subthreshold self-non-self-sustained discharge in air was studied as the basis of the system for cleaning urban air from ecologically harmful admixtures. A cycle of experiments was carried out and the efficiency of the destruction of small amounts of hydrogen sulfide mixed with air (about 8 ppm) introduced into the processed air volume was determined. Experiments demonstrated a relatively high degree of H2S decomposition (its concentration decreased 41.5 times at unit energy deposition of 8 J/cm3 in the SNSS discharge).

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REFERENCES

  1. G. M. Batanov, S. I. Gritsinin, I. A. Kossyi, A. N. Magunov, V. P. Silakov, and N. M. Tarasova, in Plasma Physics and Plasma Electronics, Ed. by L. M. Kovrizhnykh (Nova Science, Commack, NY, 1989), p. 241.

  2. I. A. Kossyi, in Proceedings of the 44th AIAA Aerospace Sciences Meeting and Exhibit, Reno, NV, 2006, Paper AIAA-2006-1457.

  3. K. V. Artem’ev, G. M. Batanov, N. K. Berezhetskaya, A. M. Davydov, I. A. Kossyi, V. I. Nefedov, K. A. Sarksyan, and N. K. Kharchev, Plasma Phys. Rep. 44, 615 (2018).

    Article  ADS  Google Scholar 

  4. Subthreshold Discharge Excited by Microwave Beam in the High-Pressure Gases. Physics and Applications, Ed. by I. A. Kossyi (Pero, Moscow, 2019) [in Russian].

    Google Scholar 

  5. K. V. Artem’ev, G. M. Batanov, N. K. Berezhetskaya, V. D. Borzosekov, A. M. Davydov, E. M. Konchekov, I. A. Kossyi, K. A. Sarksyan, V. D. Stepakhin, and N. K. Kharchev, Plasma Phys. Rep. 47, 86 (2021).

    Article  ADS  Google Scholar 

  6. K. V. Artem’ev, G. M. Batanov, N. K. Berezhetskaya, V. D. Borzosekov, A. M. Davydov, N. A. Kozhevnikova, E. M. Konchekov, I. A. Kossyi, K. A. Sarksyan, V. D. Stepakhin, S. O. Sysoev, S. M. Temchin, and N. K. Kharchev, Plasma Phys. Rep. 45, 523 (2019).

    Article  ADS  Google Scholar 

  7. Yu. P. Raizer, Gas Discharge Physics (ID Intellekt, Dolgoprudnyi, 2009; Springer, Berlin, 1997).

  8. T. Zhu, R. Wang, W. Bian, Y. Chen, and W. Jing, Plasma Sci. Technol. 20, 054007 (2018).

  9. L. Wang, X. Wang, P. Ning, C. Cheng, Y. Ma, and R. Zhang, Ind. Eng. Chem. Res. 57, 6568 (2018).

    Article  Google Scholar 

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Funding

This work was supported by the Russian Science Foundation, project no. 17-12-01352-P.

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Correspondence to V. D. Borzosekov.

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Translated by E. Voronova

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Artem’ev, K.V., Batanov, G.M., Berezhetskaya, N.K. et al. Subthreshold Discharge in a Microwave Beam as the Basis of a Plasmachemical Reactor for Cleaning Urban Air from Excess Hydrogen Sulfide. Plasma Phys. Rep. 47, 403–406 (2021). https://doi.org/10.1134/S1063780X21040036

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  • DOI: https://doi.org/10.1134/S1063780X21040036

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