PL EN


Preferencje help
Widoczny [Schowaj] Abstrakt
Liczba wyników
Powiadomienia systemowe
  • Sesja wygasła!
  • Sesja wygasła!
  • Sesja wygasła!
Tytuł artykułu

Temperature effect on explosion parameters of hydrogen-air deflagrations in presence of water vapor

Treść / Zawartość
Identyfikatory
Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
Results of investigation of hydrogen-air deflagrations phenomenon in closed vessel in various initial temperatures and volume fraction of water vapor are presented in following paper. Tests were performed in apparatus which construction complies with EN 15967 recommendations—20-litre sphere. Studied parameters were explosion pressure (Pex) and maximum explosion pressure (Pmax). Defining the influence of the initial conditions (temperature and amount of water vapor) on the maximum pressure of the hydrogen-air deflagration in a constant volume was the main aim. Initial temperatures were equal to 373K, 398K and 413K. Initial pressure was ambient (0.1 MPa). Hydrogen volume fraction differed from 15% to 80%, while humidity volume fraction from 0% to 20%. Ignition source was placed in geometrical center of testing chamber and provided energy between 10-20J from burnout of fuse wire with accordance to abovementioned standard. Common features of all experimentally obtained results were discussed. Maximum explosion pressure (Pmax) decreases with increasing the initial temperature. Furthermore, addition of the water vapor for constant initial temperature decreases value of Pmax and shifts the maximum peak to the direction of lean mixtures. Data provided in paper can be useful in assessment of explosion risk of industry installations working with hydrogen-air atmospheres with high water vapor addition.
Rocznik
Strony
39--44
Opis fizyczny
Bibliogr. 46 poz., rys., tab., wykr.
Twórcy
  • Institute of Aviation, Engineering Design Center, Warsaw
  • Warsaw University of Technology, Institute of Heat Technology, Warsaw
autor
  • Institute of Aviation, Engineering Design Center, Warsaw
  • Warsaw University of Technology, Institute of Heat Technology, Warsaw
Bibliografia
  • [1] BS EN 15967:2011, “Determination of maximum explosion pressure and the maximum rate of pressure rise of gases and vapors”
  • [2] V. Babrauskas, Ignition handbook. Issaquah, WA: Fire Science Publishers, 2003.
  • [3] H. Groh, Explosion protection. Amsterdam: Elsevier/Butterworth Heinemann, 2004.
  • [4] G. De Smedt, F. de Corte, R. Notelé and J. Berghmans, “Comparison of two standard test methods for determining explosion limits of gases at atmospheric conditions”, Journal of Hazardous Materials, vol. 70, no. 3, pp. 105-113, 1999.
  • [5] G. Naterer, I. Dinçer and C. Zamfirescu, Hydrogen production from nuclear energy. London: Springer, 2013.
  • [6] H. Coward and G. Jones, Limits of flammability of gases and vapors. Washington: U.S. Govt. Print. Off., 1952.
  • [7] M. Zabetakis, Flammability characteristics of combustible gases and vapors. [Washington]: U.S. Dept. of the Interior, Bureau of Mines; U.S. Govt. Print. Off., 1965.
  • [8] J. Kuchta, Investigation of fire and explosion accidents in the chemical, mining, and fuel-related industries. Avondale, MD: U.S. Dept. of the Interior, Bureau of Mines, 1985.
  • [9] A. Denkevits, “Explosibility of hydrogen–graphite dust hybrid mixtures”, Journal of Loss Prevention in the Process Industries, vol. 20, no. 4-6, pp. 698-707, 2007.
  • [10] R. Pilão, E. Ramalho and C. Pinho, “Explosibility of cork dust in methane/air mixtures”, Journal of Loss Prevention in the Process Industries, vol. 19, no. 1, pp. 17-23, 2006.
  • [11] Y. Khalil, “Experimental investigation of the complex deflagration phenomena of hybrid mixtures of activated carbon dust/ hydrogen/air”, Journal of Loss Prevention in the Process Industries, vol. 26, no. 6, pp. 1027-1038, 2013.
  • [12] D. Li, Q. Zhang, Q. Ma and S. Shen, “Comparison of explosion characteristics between hydrogen/air and methane/air at the stoichiometric concentrations”, International Journal of Hydrogen Energy, vol. 40, no. 28, pp. 8761-8768, 2015.
  • [13] F. Van den Schoor, R. Hermanns, J. van Oijen, F. Verplaetsen and L. de Goey, “Comparison and evaluation of methods for the determination of flammability limits, applied to methane/ hydrogen/air mixtures”, Journal of Hazardous Materials, vol. 150, no. 3, pp. 573-581, 2008.
  • [14] F. Van den Schoor and F. Verplaetsen, “The upper explosion limit of lower alkanes and alkenes in air at elevated pressures and temperatures”, Journal of Hazardous Materials, vol. 128, no. 1, pp. 1-9, 2006.
  • [15] F. Van den Schoor, F. Norman and F. Verplaetsen, “Influence of the ignition source location on the determination of the explosion pressure at elevated initial pressures”, Journal of Loss Prevention in the Process Industries, vol. 19, no. 5, pp. 459-462, 2006.
  • [16] F. Van den Schoor and F. Verplaetsen, “The upper flammability limit of methane/hydrogen/air mixtures at elevated pressures and temperatures”, International Journal of Hydrogen Energy, vol. 32, no. 13, pp. 2548-2552, 2007.
  • [17] P. Holborn, P. Battersby, J. Ingram, A. Averill and P. Nolan, “Modelling the effect of water fog on the upper flammability limit of hydrogen–oxygen–nitrogen mixtures”, International Journal of Hydrogen Energy, vol. 38, no. 16, pp. 6896-6903, 2013.
  • [18] S. Ren and Q. Zhang, “Influence of concentration distribution of hydrogen in air on measured flammability limits”, Journal of Loss Prevention in the Process Industries, vol. 34, pp. 82-91, 2015.
  • [19] W. Rudy, A. Dabkowski and A. Teodorczyk, “Experimental and numerical study on spontaneous ignition of hydrogen and hydrogen-methane jets in air”, International Journal of Hydrogen Energy, vol. 39, no. 35, pp. 20388-20395, 2014.
  • [20] X. Liu and Q. Zhang, “Influence of initial pressure and temperature on flammability limits of hydrogen–air”, International Journal of Hydrogen Energy, vol. 39, no. 12, pp. 6774-6782, 2014.
  • [21] A. Sánchez and F. Williams, “Recent advances in understanding of flammability characteristics of hydrogen”, Progress in Energy and Combustion Science, vol. 41, pp. 1-55, 2014.
  • [22] C. Movileanu, D. Razus and D. Oancea, “Additive effects on the rate of pressure rise for ethylene–air deflagrations in closed vessels”, Fuel, vol. 111, pp. 194-200, 2013.
  • [23] D. Razus, D. Oancea, V. Brinzea, M. Mitu and C. Movileanu, “Experimental and computed burning velocities of propane–air mixtures”, Energy Conversion and Management, vol. 51, no. 12, pp. 2979-2984, 2010.
  • [24] D. Razus, M. Molnarne and O. Fuß, “Limiting oxygen concentration
  • evaluation in flammable gaseous mixtures by means of calculated adiabatic flame temperatures”, Chemical Engineering and Processing: Process Intensification, vol. 43, no. 6, pp. 775-784, 2004.
  • [25] D. Razus, D. Oancea, F. Chirila and N. Ionescu, “Transmission of an explosion between linked vessels”, Fire Safety Journal, vol. 38, no. 2, pp. 147-163, 2003.
  • [26] A. Di Benedetto, V. Di Sarli, E. Salzano, F. Cammarota and G. Russo, “Explosion behavior of CH4/O2/N2/CO2 and H2/ O2/N2/CO2 mixtures”, International Journal of Hydrogen Energy, vol. 34, no. 16, pp. 6970-6978, 2009.
  • [27] E. Salzano, F. Cammarota, A. Di Benedetto and V. Di Sarli, “Explosion behavior of hydrogen–methane/air mixtures”, Journal of Loss Prevention in the Process Industries, vol. 25, no. 3, pp. 443-447, 2012.
  • [28] V. Di Sarli and A. Benedetto, “Laminar burning velocity of hydrogen–methane/air premixed flames”, International Journal of Hydrogen Energy, vol. 32, no. 5, pp. 637-646, 2007.
  • [29] A. Di Benedetto, “The thermal/thermodynamic theory of flammability: The adiabatic flammability limits”, Chemical Engineering Science, vol. 99, pp. 265-273, 2013.
  • [30] Q. Liu, Y. Zhang, F. Niu and L. Li, “Study on the flame propagation and gas explosion in propane/air mixtures”, Fuel, vol. 140, pp. 677-684, 2015.
  • [31] Q. Li, Y. Cheng and Z. Huang, “Comparative assessment of the explosion characteristics of alcohol–air mixtures”, Journal of Loss Prevention in the Process Industries, vol. 37, pp. 91- 100, 2015.
  • [32] P. Flasińska, M. Frączak, T. Piotrkowski, “Explosion hazard evaluation and determination of the explosion parameters for selected hydrocarbons C6 – C8”, Central European Journal of Energetic Materials, vol. 9, pp. 399-409, 2012.
  • [33] M. Grabarczyk, R. Porowski, A. Teodorczyk, “Flammability characteristics of butanol fuel blends at various initial temperatures”, Archivum Combustionis, vol. 34, pp. 49-70, 2014.
  • [34] M. Gieras, R. Klemens, A. Kuhl, P. Oleszczak, W. Trzciński and P. Wolański, “Influence of the chamber volume on the upper explosion limit for hexane–air mixtures”, Journal of Loss Prevention in the Process Industries, vol. 21, no. 4, pp. 423-436, 2008.
  • [35] M. Gieras, R. Klemens, G. Rarata and P. Wolański, “Determination of explosion parameters of methane-air mixtures in the chamber of 40dm3 at normal and elevated temperature”, Journal of Loss Prevention in the Process Industries, vol. 19, no. 2-3, pp. 263-270, 2006.
  • [36] M. Gieras, R. Klemens and P. Wolański, “Experimental and theoretical study of ignition of single coal particles at zero gravity”, Acta Astronautica, vol. 13, no. 5, pp. 231-239, 1986.
  • [37] Y. Fan and D. Crowl, “Predicting the maximum gas deflagration pressure over the entire flammable range”, Journal of Loss Prevention in the Process Industries, vol. 13, no. 3-5, pp. 361-368, 2000.
  • [38] D. Bradley and A. Mitcheson, “Mathematical solutions for explosions in spherical vessels”,Combustion and Flame, vol. 26, pp. 201-217, 1976.
  • [39] V. Giurcan, D. Razus, M. Mitu and D. Oancea, “Prediction of flammability limits of fuel-air and fuel-air-inert mixtures from explosivity parameters in closed vessels”, Journal of Loss Prevention in the Process Industries, vol. 34, pp. 65-71, 2015.
  • [40] BS EN 1839:2012, “ Determination of explosion limits of gases and vapors”
  • [41] http://www.mathworks.com/products/curvefitting/
  • [42] http://www.mathworks.com
  • [43] http://www.linde.pl/en/index.html
  • [44] W. Wagner, H. Kretzschmar and W. Wagner, International steam tables. Berlin: Springer, 2008.
  • [45] http://www.anko-lab.com/
  • [46] http://www.cnbop.pl/en
Typ dokumentu
Bibliografia
Identyfikator YADDA
bwmeta1.element.baztech-fc343a6a-1553-4c88-99a3-9de277261c2e
JavaScript jest wyłączony w Twojej przeglądarce internetowej. Włącz go, a następnie odśwież stronę, aby móc w pełni z niej korzystać.