Investigation of the effect of electrode geometry on spark ignition

被引:62
作者
Bane, Sally P. M. [1 ]
Ziegler, Jack L. [2 ]
Shepherd, Joseph E. [3 ]
机构
[1] Purdue Univ, Sch Aeronaut & Astronaut, W Lafayette, IN 47907 USA
[2] Natl Renewable Energy Lab, Natl Bioenergy Ctr, Golden, CO 80401 USA
[3] CALTECH, Grad Aerosp Labs, Pasadena, CA 91125 USA
关键词
Spark ignition; Flames; Electrode; FLAME KERNEL; NONEQUILIBRIUM PLASMA; NANOSECOND DISCHARGE; METHANE/AIR MIXTURES; GAS TEMPERATURE; AIR MIXTURES; COMBUSTION; SIMULATION; ENERGY; MECHANISM;
D O I
10.1016/j.combustflame.2014.07.017
中图分类号
O414.1 [热力学];
学科分类号
摘要
High-speed schlieren visualization and numerical simulations are used to study the fluid mechanics following a spark discharge and the effect on the ignition process in a hydrogen-air mixture. A two-dimensional axisymmetric model of spark discharge in air and spark ignition was developed using the non-reactive and reactive Navier-Stokes equations including mass and heat diffusion. The numerical method employs structured adaptive mesh refinement software to produce highly-resolved simulations, which is critical for accurate resolution of all the physical scales of the complex fluid mechanics and chemistry. The simulations were performed with three different electrode geometries to investigate the effect of the geometry on the fluid mechanics of the evolving spark kernel and on flame formation. The computational results were compared with high-speed schlieren visualization of spark and ignition kernels. It was shown that the spark channel emits a blast wave that is spherical near the electrode surfaces and cylindrical near the center of the spark gap, and thus is highly influenced by the electrode geometry. The ensuing competition between spherical and cylindrical expansion in the spark gap and the boundary layer on the electrode surface both generate vorticity, resulting in the toroidal shape of the hot gas kernel and enhanced mixing. The temperature and rate of cooling of the hot kernel and mixing region are significantly. effected by the electrode geometry and will have a critical impact on ignition. In the flanged electrode configuration the viscous effects generate a multidimensional flow field and lead to a curved flame front, a result not seen in previous work. Also, the high level of confinement by the flanges results in higher gas temperatures, suggesting that a lower ignition energy would be required. The results of this work provide new insights on the roles of the various physical phenomena in spark kernel formation and ignition, in particular the important effects of viscosity, pressure gradients, electrode geometry, and hot gas confinement. (C) 2014 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
引用
收藏
页码:462 / 469
页数:8
相关论文
共 45 条
  • [1] Plasma assisted ignition and high-speed flow control: non-thermal and thermal effects
    Adamovich, I. V.
    Choi, I.
    Jiang, N.
    Kim, J-H
    Keshav, S.
    Lempert, W. R.
    Mintusov, E.
    Nishihara, M.
    Samimy, M.
    Uddi, M.
    [J]. PLASMA SOURCES SCIENCE & TECHNOLOGY, 2009, 18 (03)
  • [2] Two-dimensional model for spark discharge simulation in air
    Akram, M
    [J]. AIAA JOURNAL, 1996, 34 (09) : 1835 - 1842
  • [3] Simulation of the ignition of a methane-air mixture by a high-voltage nanosecond discharge
    Aleksandrov, N. L.
    Kindysheva, S. V.
    Kukaev, E. N.
    Starikovskaya, S. M.
    Starikovskii, A. Yu.
    [J]. PLASMA PHYSICS REPORTS, 2009, 35 (10) : 867 - 882
  • [4] Mechanism of ignition by non-equilibrium plasma
    Aleksandrov, Nikolay L.
    Kindysheva, Svetlana V.
    Kosarev, Ilya N.
    Starikovskaia, Svetlana M.
    Starikovskii, Andrei Yu.
    [J]. PROCEEDINGS OF THE COMBUSTION INSTITUTE, 2009, 32 : 205 - 212
  • [5] Spark kernel development in constant volume combustion
    Arpaci, VS
    Ko, Y
    Lim, MT
    Lee, HS
    [J]. COMBUSTION AND FLAME, 2003, 135 (03) : 315 - 322
  • [6] THE INFLUENCE OF THE IGNITER-INDUCED BLAST WAVE UPON THE INITIAL VOLUME AND EXPANSION OF THE FLAME KERNEL
    AU, S
    HALEY, R
    SMY, PR
    [J]. COMBUSTION AND FLAME, 1992, 88 (01) : 50 - 60
  • [7] Bane S, 2010, Tech. rep. FM2010-002
  • [8] Experimental investigation of spark ignition energy in kerosene, hexane, and hydrogen
    Bane, S. P. M.
    Ziegler, J. L.
    Boettcher, P. A.
    Coronel, S. A.
    Shepherd, J. E.
    [J]. JOURNAL OF LOSS PREVENTION IN THE PROCESS INDUSTRIES, 2013, 26 (02) : 290 - 294
  • [9] Bane SPM, 2010, THESIS CALIFORNIA I
  • [10] BERGER M, 1988, J COMPUT PHYS, V82, P64