Accelerated piloted ignition on an edge of a PMMA cube

被引:0
|
作者
Gong, Junhui [1 ]
Sun, Xiaolu [1 ]
Delichatsios, Michael A. [2 ]
机构
[1] Nanjing Tech Univ, Coll Safety Sci & Engn, 30 Puzhu South Rd, Nanjing 211816, Peoples R China
[2] Northeastern Univ, Dept Mech & Ind Engn, 360 Huntington Ave, Boston, MA 02115 USA
基金
中国国家自然科学基金;
关键词
Ignition on edge; PMMA cubes; Two perpendicular heat fluxes; Critical temperature; Critical heat flux; DOWNWARD FLAME SPREAD; AUTO-IGNITION; PYROLYSIS; AUTOIGNITION; APPROXIMATE; GEOMETRY; TIMES; FLUX;
D O I
10.1016/j.firesaf.2024.104296
中图分类号
TU [建筑科学];
学科分类号
0813 ;
摘要
Ignition on solid edges is easier compared to that on flat surfaces, featuring higher fire hazard. To reveal this unique ignition mechanism, an apparatus capable of emitting two horizontal perpendicular heat fluxes, defined as q1 and q2, was built to conduct piloted ignition tests on vertical edges of PMMA cubes. Two sets of tests were designed: (1) q1 = q2, denoted as SET1; (2) q1 remained unchanged while q2 varied, denoted as SET2. For comparison, 1D ignition tests of vertical samples were also performed. Edge and surface temperatures, mass loss rate (MLR), and ignition time (tig) were collected. Results showed that ignition on edge was accelerated compared to 1D ignition. The numerical solver neglecting edge regression captured measured surface temperature but overpredicted edge temperature. Attributed by the same reason, experimental MLRs and tig of SET1 and SET2 cannot be accurately estimated by the numerical model. Critical MLR in SET1 and SET2 declined with lower heat flux but remained unchanged in 1D ignition. Critical temperature was identified to be 656.4 +/- 3.5 K. In SET1, tig0.5 linearly depended on heat flux, whereas no such linearity existed in SET2. Using measured tig and analytical models, thermal inertia of PMMA and critical heat flux were estimated.
引用
收藏
页数:10
相关论文
共 50 条
  • [21] Numerical study of piloted ignition of forest fuel layer
    Consalvi, J. L.
    Nmira, F.
    Fuentes, A.
    Mindykowski, P.
    Porterie, B.
    PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2011, 33 : 2641 - 2648
  • [22] Heat and mass transfer during piloted ignition of wood
    Moghtaderi, B
    Novozhilov, V
    Fletcher, DF
    HEAT AND MASS TRANSFER AUSTRALASIA 1996, 1998, : 227 - 231
  • [23] Prediction model of Piloted Ignition Time for Thermoplastic Material
    Cheng, Xudong
    Zhou, Yong
    Li, Kaiyuan
    Yang, Hui
    Zhang, Heping
    12TH INTERNATIONAL CONFERENCE ON COMBUSTION & ENERGY UTILISATION, 2015, 66 : 157 - 160
  • [24] Piloted Ignition of Cylindrical Wildland Fuels Under Irradiation
    Lin, Shaorun
    Huang, Xinyan
    Urban, James
    McAllister, Sara
    Fernandez-Pello, Carlos
    FRONTIERS IN MECHANICAL ENGINEERING-SWITZERLAND, 2019, 5
  • [25] PILOTED IGNITION OF CONVECTION-HEATED CELLULOSE SLABS
    WEATHERFORD, WD
    VALTIERR.ML
    COMBUSTION AND FLAME, 1966, 10 (03) : 279 - +
  • [26] Effects of sample orientation on pyrolysis and piloted ignition of wood
    Chen, Xiao
    Zhou, Zhihui
    Li, Pan
    Zhou, Dechuang
    Wang, Jian
    JOURNAL OF FIRE SCIENCES, 2014, 32 (06) : 483 - 497
  • [27] Comparison of the effects of piloted-ignition and spark ignition on combustion of a vibration hydrogen combustor
    Chen, Yaqi
    Chen, Simiao
    International Journal of Hydrogen Energy, 2025, 125 : 15 - 27
  • [28] Fire risk of dripping flame: Piloted ignition and soaking effect
    Sun, Peiyi
    Jia, Yifan
    Zhang, Xiaoning
    Huang, Xinyan
    FIRE SAFETY JOURNAL, 2021, 122
  • [29] The effect of fiberglass concentration on the piloted ignition of polypropylene/fiberglass composites
    Stevanovic, A
    Mehta, S
    Walther, DC
    Fernandez-Pello, AC
    COMBUSTION SCIENCE AND TECHNOLOGY, 2002, 174 (11-2) : 171 - 186
  • [30] Heat and Mass Transfer During Piloted Ignition of Cellulosic Solids
    Atreya, A.
    Wichman, I. S.
    JOURNAL OF HEAT TRANSFER-TRANSACTIONS OF THE ASME, 1989, 111 (1-4): : 719 - 725