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Structure and stability of non-adiabatic reverse smolder waves

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Abstract

The structure and stability of non-adiabatic reverse smolder waves are investigated numerically. First, the 1D steady-state responses of reverse smolder waves in the presence of convective heat losses are studied with the rate of incoming air flow as the control parameter. Based on the 1D steady solutions, the linear stability and the Lewis number effects on the stability are examined by a numerical normal mode analysis. Finally, the dynamical evolution processes of unstable reverse smolder waves are studied by direct numerical simulations. It is shown that, in comparison with the adiabatic case, the presence of heat losses leads to a backward shift of the extinction limit. For varying Lewis numbers, the extinction limit shifts forward with the increase of the Lewis number while the smolder temperature remains unchanged. Furthermore, results of a linear stability analysis show that the maximum growth rate decreases with the increasing Lewis number, implying that increasing the Lewis number tends to weaken the thermal-diffusive instability of non-adiabatic reverse smolder waves. Direct numerical simulation results show that, on the fuel-rich branch, the unstable plane reverse smolder wave gradually develops to a regular steady fingering pattern, whereas on the fuel-lean branch, similar to the adiabatic case, vigorous fragmentation instability occurs, and is accompanied by a substantial local temperature rise, which may be sufficiently high to trigger the transition to flaming combustion.

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References

  1. Ohlemiller, T. J. Modeling of smoldering combustion propagation. Prog. Eng. Combust. Sci., 11, 277–310 (1985)

    Article  Google Scholar 

  2. Sun, W. C., Xie, M. Z., and Zhang, M. G. Experimental study on smolder propagation and transition to flame in a horizontal fuel layer. Fire Safety and Science, 4(3), 23–29 (1995)

    Google Scholar 

  3. Lu, C., Zhou, J. J., Zhang, L. H., Peng, L., Lin, Q. Z., and Wang, Q. G. Experimental study of transition from smolder to flame of polyurethane foam. Journal of Combustion Science and Technology, 11(3), 268–272 (2005)

    Google Scholar 

  4. Tse, S. D., Fernandez-Pello, A. C., and Miyasaka, K. Controlling mechanisms in the transition from smoldering to flaming combustion. Proc. Combust. Inst., 26, 1505–1513 (1996)

    Google Scholar 

  5. Aldushin, A. P., Bayliss, A., and Matkowsky, B. J. On the transition from smoldering to flaming. Combustion Flame, 145, 579–606 (2006)

    Article  Google Scholar 

  6. Ohlemiller, T. and Lucca, D. An experimental comparison of forward and reverse smolder propagation in permeable fuel bed. Combustion Flame, 54, 131–147 (1983)

    Article  Google Scholar 

  7. Dosanjh, S. S. and Pagni, P. J. Forced countercurrent smoldering combustion. Proceedings of 1987 ASME/JSME Thermal Energy Joint Conference, American Society of Mechanical Engineers, New York, 165–173 (1987)

    Google Scholar 

  8. Torero, J. L., Fernandez-Pello, A. C., and Kitano, M. Opposed forced flow smoldering of polyurethane foam. Combustion Science and Technology, 91, 95–117 (1993)

    Article  Google Scholar 

  9. Schult, D. A., Matkowsky, B. J., Volpert, V. A., and Fernandez-Pello, A. C. Propagation and extinction of forced opposed flow smolder waves. Combustion Flame, 101, 471–490 (1995)

    Article  Google Scholar 

  10. Olson, S. L., Baum, H. R., and Kashiwagi, T. Finger-like smoldering over thin cellulosic sheets in microgravity. Proc. Combust. Inst., 27, 2525–2533 (1998)

    Google Scholar 

  11. Zik, O., Olami, Z., and Moses, E. Fingering instability in combustion. Phys. Rev. Lett., 81(18), 3868–3871 (1998)

    Article  Google Scholar 

  12. Zik, O. and Moses, E. Fingering instability in solid fuel combustion: the characteristic scales of the developed state. Proc. Combust. Inst., 27, 2815–2820 (1998)

    Google Scholar 

  13. Zhang, Y., Ronney, P., Roegner, E., and Greenberg, J. Lewis number effects on flame spreading over thin solid fuels. Combustion Flame, 90, 71–83 (1992)

    Article  Google Scholar 

  14. Olson, S., Miller, F., and Wichman, I. Characterizing fingering flamelets using the logistic model. Combustion Theory Model, 10, 323–347 (2006)

    Article  Google Scholar 

  15. Olson, S., Miller, F., Jahangirian, S., and Wichman, I. Flame spread over thin fuels in actual and simulated microgravity conditions. Combustion Flame, 156, 1214–1226 (2009)

    Article  Google Scholar 

  16. Decker, M. and Schult, D. Dynamics of smolder waves near extinction. Combustion Theory Model, 8, 491–512 (2004)

    Article  MathSciNet  MATH  Google Scholar 

  17. Lu, Z. B., Buckmaster, J., Chen, M., and Massa, L. Instabilities of reverse smolder waves. Combustion Theory Model, 10, 515–534 (2006)

    Article  MathSciNet  MATH  Google Scholar 

  18. Lu, Z. B. and Dong, Y. Fingering instability in forward smolder combustion. Combustion Theory Model, 15, 795–815 (2011)

    Article  MATH  Google Scholar 

  19. Aldushin, A. P. and Matlowshy, B. J. Fingering and the Saffman-Taylor problem in filtration combustion. Combustion Flame, 133, 293–341 (1998)

    Google Scholar 

  20. Brailovsky, I., Gordon, P., and Sivashinsky, G. On flame-flow interaction in forward smoldering. Combustion Flame, 153, 490–495 (2008)

    Article  Google Scholar 

  21. Wang, J., Chao, C., and Kong, W. Experimental study and asymptotic analysis of horizontal forced forward smoldering combustion. Combustion Flame, 135, 405–419 (2003)

    Article  Google Scholar 

  22. Wang, S. and Zhang, X. Microgravity smoldering combustion of flexible polyurethane foam with central ignition. Microgravity Sci. Tec., 20, 99–105 (2008)

    Article  Google Scholar 

Download references

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Correspondence to Zhan-bin Lu  (卢占斌).

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Project supported by the Shanghai Rising Star Program (No. 09QA1402300) and the Scientific Research Innovation Program of Shanghai Education Commission

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Yuan, Fp., Lu, Zb. Structure and stability of non-adiabatic reverse smolder waves. Appl. Math. Mech.-Engl. Ed. 34, 657–668 (2013). https://doi.org/10.1007/s10483-013-1698-8

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  • DOI: https://doi.org/10.1007/s10483-013-1698-8

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Chinese Library Classification

2010 Mathematics Subject Classification

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