Influence of porous walls on flame front perturbations in hydrogen-air mixtures

被引:9
|
作者
Golovastov, Sergey V. [1 ,2 ]
Bivol, Grigory Yu. [1 ]
Golub, Victor V. [1 ]
机构
[1] Russian Acad Sci, Joint Inst High Temp, Izhorskaya Str,13,Build 2, Moscow 125412, Russia
[2] Bauman Moscow State Tech Univ, 2nd Baumanskaya Str 5, Moscow 105005, Russia
关键词
Flame acceleration; Porous material; Hydrogen; Perturbations; Polyurethane foam; BURNING VELOCITIES; SHOCK-WAVE; PROPAGATION; ACCELERATION; STABILITY; BEHAVIORS; DIFFUSION; PRESSURE; SPEED; TUBES;
D O I
10.1016/j.ijhydene.2020.10.028
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
The evolution of flame front perturbations during propagation in a half-open channel with a porous coating was studied. The porous coating generates disturbances in the flow and affects the magnitude of the disturbance of the flame front and its speed. Polyurethane foam with open pores was used as the porous coating. A series of experiments was carried out in a hydrogen-air mixture at atmospheric pressure. Mixture compositions and pore sizes varied. The molar excess of fuel (equivalence ratio) phi ranged from 0.3 to 1.0. Pore sizes ranged from 0.3 mm to 2.5 mm. Diagnostics were carried out using a high-speed camera and the Schlieren method was used for assessment. Based on the frame analysis, the sizes of the flame front perturbations were determined depending on the mixture composition and the pore size. The perturbation sizes are divided into two groups and the size increases as the average pore size enlarges. The parameters of the disturbances in the channel with porous coating and in a smooth channel are compared. Porous coatings have different effects on the size of the flame front disturbances and the flame velocity, depending on the average pore size for different equivalence ratios phi. (C) 2020 Hydrogen Energy Publications LLC. Published by Elsevier Ltd. All rights reserved.
引用
收藏
页码:2783 / 2795
页数:13
相关论文
共 50 条
  • [31] Effect of channel geometry and porous coverage on flame acceleration in hydrogen-air mixture
    Bivol, G. Y.
    Golovastov, S., V
    Golub, V. V.
    PROCESS SAFETY AND ENVIRONMENTAL PROTECTION, 2021, 151 : 128 - 140
  • [32] Influence of Water Microdroplets on the Development of Hydrogen-Air Flame Instability in a Channel
    Yakovenko, I. S.
    Kiverin, A. D.
    RUSSIAN JOURNAL OF PHYSICAL CHEMISTRY B, 2024, 18 (04) : 1069 - 1076
  • [33] BURNING VELOCITIES IN HYDROGEN-AIR MIXTURES
    DIXONLEWIS, G
    COMBUSTION AND FLAME, 1970, 15 (02) : 197 - +
  • [34] BURNING VELOCITIES OF HYDROGEN-AIR MIXTURES
    KOROLL, GW
    KUMAR, RK
    BOWLES, EM
    COMBUSTION AND FLAME, 1993, 94 (03) : 330 - 340
  • [35] Control of detonation in hydrogen-air mixtures
    Smirnov, N. N.
    Azatyan, V. V.
    Nikitin, V. F.
    Mikhalchenko, E. V.
    Smirnova, M. N.
    Stamov, L. I.
    Tyurenkova, V. V.
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2024, 49 : 1315 - 1324
  • [36] AUTOIGNITION OF FLOWING HYDROGEN-AIR MIXTURES
    NEER, ME
    AIAA JOURNAL, 1975, 13 (07) : 924 - 928
  • [37] FLAMMABILITY LIMITS OF HYDROGEN-AIR MIXTURES
    Cheikhravat, H.
    Chaumeix, N.
    Bentaib, A.
    Paillard, C. -E.
    NUCLEAR TECHNOLOGY, 2012, 178 (01) : 5 - 16
  • [38] Ignition of lean hydrogen-air mixtures
    Swain, MR
    Filoso, PA
    Swain, MN
    INTERNATIONAL JOURNAL OF HYDROGEN ENERGY, 2005, 30 (13-14) : 1447 - 1455
  • [39] SUPPRESSION OF DETONATION IN HYDROGEN-AIR MIXTURES
    BELIKOV, VV
    VELIKOVA, GV
    GOLOVIZNIN, VM
    SEMENOV, VN
    STARODUBTSEVA, LP
    FOKIN, AL
    HIGH TEMPERATURE, 1995, 33 (03) : 449 - 454
  • [40] Flammability limit of hydrogen-air mixtures
    Dieterlen, F
    ZEITSCHRIFT DES VEREINES DEUTSCHER INGENIEURE, 1931, 75 : 82 - 82