Preview

Pozharovzryvobezopasnost/Fire and Explosion Safety

Advanced search

Defining the specific formation coefficient and the critical partial density of hydrogen cyanide and carbon monoxide at the fire indoors

https://doi.org/10.18322/PVB.2019.28.05.19-26

Abstract

Introduction. Modern mathematical models of the distribution of toxic gases use the values of specific coefficients of formation of only three gases. It is not considered the whole spectrum of toxic gases produced during the combustion of synthetic materials. Therefore, the experimental study of the process of hydrogen cyanide formation is an important task.
Aims and purposes. The purpose of this article is to develop a methodology for obtaining initial data on the release of hydrogen cyanide. These data are necessary to calculate the time of blocking evacuation ways. To achieve it, the value of the critical concentration of hydrogen cyanide was justified. The experimental unit was modernized and experimental studies of partial densities of hydrogen cyanide and carbon monoxide, as well as specific coefficients of their release, were carried out during combustion of modern cable products.
Methods. An experimental method is used to study the process of formation of hydrogen cyanide and carbon mono­xide during the combustion of samples of cable products in a modernized small-size experimental unit. The results were analyzed.
Results. The critical value of the partial density of hydrogen cyanide, presented in normative documents, on the basis of analysis of data given in the literature sources, is substantiated. Experimental dependences between the time of testing and partial densities of hydrogen cyanide and carbon monoxide, as well as their specific coefficients of release, were obtained. This study reveals that the experimental value of the partial density of hydrogen cyanide reaches a critical value. That fact justifies the need to calculate the time of blocking the escape routes with con­sidering influence of hydrogen cyanide.
Conclusion. The modernization of the experimental unit makes it possible to obtain experimental dependencies on the time of partial densities of hydrogen cyanide and carbon monoxide, as well as specific coefficients of their separation. This makes it possible to update (by HCN and CO) the existing database of typical fire load and to calculate the time of blocking the escape routes in case of combined effects of the above mentioned gases. When calculating fire risks in case of the burning of modern cable products, it is necessary to determine the time of blocking evacuation routes by hydrogen cyanide.

About the Authors

S. V. Puzach
State Fire Academy of Emercom of Russia, Moscow, Russian Federation
Russian Federation

Sergey V. Puzach, Dr. Sci. (Eng.), Professor, Honoured Scientist of the Russian Federation, Head of Thermal Physics and Hydraulic Department

Author ID: 7003537835; Researcher ID: U-2907-2019

Borisa Galushkina St., 4, Moscow, 129366



O. B. Boldrushkiev
State Fire Academy of Emercom of Russia, Moscow, Russian Federation
Russian Federation

Ochir B. Boldrushkiev, Postgraduated Student, Thermal Physics and Hydraulic Department

Borisa Galushkina St., 4, Moscow, 129366

 



References

1. I. L. Beleshnikov. Forensic medical assessment of the content of cyanide in the organs and tissues of people who died in a fire. Abstr. Cand. Sci. (Med.) Diss. Saint Petersburg, 1996. 11 p. (in Russian).

2. A. A. Stec, T. R. Hull. Assessment of the fire toxicity of building insulation materials. Energy and Build¬ings, 2011, vol. 43, issue 2-3, pp. 498–506. DOI: 10.1016/j.enbuild.2010.10.015.

3. S. V. Puzach, V. M. Doan, T. D. Nguen, E. V. Suleykin, R. G. Akperov. Obrazovaniye, rasprostraneniye i vozdeystviye na cheloveka toksichnykh produktov goreniya pri pozhare v pomeshchenii [The formation, distribution and effects on humans of toxic products of combustion at the fire indoors]. Moscow, State Fire Academy of Emercom of Russia Publ., 2017. 130 p. (in Russian).

4. S. V. Puzach. Metody rascheta teplomassoobmena pri pozhare v pomeshchenii i ikh primeneniye pri reshenii prakticheskikh zadach pozharovzryvobezopasnosti [Methods for calculating the heat and mass transfer in a fire at the premises and their application in solving practical problems of fire safety]. Moscow, State Fire Academy of Emercom of Russia Publ., 2005. 336 p. (in Russian).

5. N.-K. Kim, N.-W. Cho, D.-H. Rie. A study on the risk of particulate materials included in the combustion products of building materials. Fire Science and Engineering, 2016, vol. 30, issue 1, pp. 43–48. DOI: 10.7731/KIFSE.2016.30.1.043.

6. Yu. A. Koshmarov. Prognozirovaniye opasnykh faktorov pozhara v pomeshchenii [Тhe prediction of dangerous fire factors in the room]. Moscow, State Fire Academy of Ministry of Internal Affairs of Russia Publ., 2000. 118 p. (in Russian).

7. S. V. Puzach, A. V. Smagin, O. S. Lebedchenko, E. S. Abakumov. Novyye predstavleniya o raschete neobkhodimogo vremeni evakuatsii lyudey i ob effektivnosti ispolzovaniya portativnykh filtruyushchikh samospasateley pri evakuatsii na pozharakh [New ideas about the calculation of necessary time of evacuation of people and the effectiveness of using a portable filter self-rescuers during evacuation at fires]. Moscow, State Fire Academy of Emercom of Russia Publ., 2007. 222 p. (in Russian).

8. R. A. Anderson, W. A. Harland. Fire deaths in the Glasgow Area: III the role of hydrogen cyanide. Medicine, Science and the Law, 1982, vol. 22, issue 1, pp. 35–40. DOI: 10.1177/002580248202200106.

9. L. M. Sweeney, D. R. Sommerville, M. R. Goodwin, R. A. James, S. R. Channel. Acute toxicity when concentration varies with time: A case study with carbon monoxide inhalation by rats. Regulatory Toxicology and Pharmacology, 2016, vol. 80, pp. 102–115. DOI: 10.1016/j.yrtph.2016.06.014.

10. J. Pauluhn. Acute inhalation toxicity of carbon monoxide and hydrogen cyanide revisited: Comparison of models to disentangle the concentration × time conundrum of lethality and incapacitation. Regulatory Toxicology and Pharmacology, 2016, vol. 80, pp. 173–182. DOI: 10.1016/j.yrtph.2016.06.017.

11. R. H. Erkenov, S. K. Egizov, A. V. Meshcheryakov, A. B. Plaksitsky. Technical research of processes of mehanodestruction of building polymer materials. Pozharnaya bezopasnost: problemy i perspektivy/Fire Safety: Problems and Prospects, 2018, vol. 1, no. 9, pp. 1018–1019 (in Russian).

12. R. D. Treitman, W. A. Burgess, A. Gold. Air contaminants encountered by firefighters. American Industrial Hygiene Association Journal, 1980, vol. 41, issue 11, pp. 796–802. DOI: 10.1080/15298668091425662.

13. V. V. Kholshchevnikov, D. A. Samoshin, A. P. Parfenenko, I. S. Kudrin, R. N. Istratov, I. R. Belosokhov. Evakuatsiya i povedeniye lyudey pri pozharakh [Evacuation and behavior of people during fires]. Moscow, State Fire Academy of Emercom of Russia Publ., 2015. 262 p. (in Russian).

14. D. A. Samoshin. Sostav lyudskikh potokov i parametry ikh dvizheniya pri evakuatsii [The composition of human flows and the parameters of their movement during evacuation]. Moscow, State Fire Aca¬demy of Emercom of Russia Publ., 2016. 210 p. (in Russian).

15. K. G. Orloff, B. Kaplan, P. Kowalski. Hydrogen cyanide in ambient air near a gold heap leach field: Measured vs. modeled concentrations. Atmospheric Environment, 2006, vol. 40, issue 17, pp. 3022–3029. DOI: 10.1016/j.atmosenv.2005.09.089.

16. K. Anseeuw, N. Delvau, G. Burillo-Putze, F. De Iaco, G. Geldner, P. Holmström, Y. Lambert, M. Sabbe. Cyanide poisoning by fire smoke inhalation: a European expert consensus. European Journal of Emergency Medicine, 2013, vol. 20, issue 1, pp. 2–9. DOI: 10.1097/MEJ.0b013e328357170b.

17. V. S. Ilichkin, A. A. Fukalova. Toksichnost produktov goreniya polimernykh materialov: obzornaya informatsiya [Toxicity of combustion products of polymeric materials. Overview]. Moscow, GITs Publ., 1987. 68 p. (in Russian).

18. G. E. Hartzell, D. N. Priest, W. G. Switzer. Modeling of toxicological effects of fire gases: II. Mathematical modeling of intoxication of rats by carbon monoxide and hydrogen cyanide. Journal of Fire Sciences, 1985, vol. 3, issue 2, pp. 115–128. DOI: 10.1177/073490418500300204.

19. H. L. Kaplan, G. E. Hartzell. Modeling of toxicological effects of fire gases: I. Incapacitation effects of narcotic fire gases. Journal of Fire Sciences, 1984, vol. 2, issue 4, pp. 286–305. DOI: 10.1177/073490418400200404.

20. S. V. Puzach, Tat Dat Nguen. Critical carbon monoxide concentration in an indoor fire. Pozharnaya bezopasnost: problemy i perspektivy / Fire Safety: Problems and Prospects, 2016, vol. 1 no. 1, pp. 181–183 (in Russian).

21. S. V. Puzach, R. G. Akperov. Experimental determination of the specific coefficient of release of carbon monoxide during a fire in the room. Pozharovzryvobezopasnost/Fire and Explosion Safety, 2016, vol. 25, no. 5, pp. 18–25 (in Russian). DOI: 10.18322/PVB.2016.25.05.18-25.

22. S. V. Puzach, E. V. Suleykin. New united theoretical and experimental approach to the calculation of the distribution of toxic gases in case of fire in the room. Pozharovzryvobezopasnost/Fire and Explosion Safety, 2016, vol. 25, no. 2, pp. 13–20 (in Russian). DOI: 10.18322/PVB.2016.25.02.13-20.

23. S. V. Puzach, E. V. Suleikin, R. G. Akperov, V. G. Puzach. About experimental toxicity assessment of combustion products at fire in premise. Tekhnologii tekhnosfernoy bezopasnosti / Technology of Technosphere Safety, 2013, issue 4(50). 11 p. (in Russian).


Review

For citations:


Puzach S.V., Boldrushkiev O.B. Defining the specific formation coefficient and the critical partial density of hydrogen cyanide and carbon monoxide at the fire indoors. Pozharovzryvobezopasnost/Fire and Explosion Safety. 2019;28(5):19-26. (In Russ.) https://doi.org/10.18322/PVB.2019.28.05.19-26

Views: 799


Creative Commons License
This work is licensed under a Creative Commons Attribution 4.0 License.


ISSN 0869-7493 (Print)
ISSN 2587-6201 (Online)