Second-generation aerosol shock tube: an improved design

被引:14
|
作者
Haylett, D. R. [1 ]
Davidson, D. F. [1 ]
Hanson, R. K. [1 ]
机构
[1] Stanford Univ, Dept Mech Engn, Stanford, CA 94305 USA
关键词
Aerosol; Shock tube; Combustion; Low-vapor pressure; Dodecane; Ignition delay times; IGNITION DELAY TIMES; ALUMINUM PARTICLES; LOW-PRESSURE; COMBUSTION;
D O I
10.1007/s00193-012-0383-x
中图分类号
O3 [力学];
学科分类号
08 ; 0801 ;
摘要
An improved, second-generation aerosol shock tube (AST II) has been developed for the study of the chemical kinetics of low-vapor-pressure fuels. These improvements enable a wider range of fuel concentrations and enhanced spatial uniformity relative to our initial aerosol shock tube (AST I). In addition, the design of AST II limits the aerosol loading zone in the shock tube to a fixed region (1.2 m in length adjacent to the shock tube endwall). AST II achieves these improvements using a separate holding tank to prepare the aerosol mixture and a slightly under-pressure dump tank to carefully pull the aerosol mixture into the tube in a plug-flow. This filling method is capable of producing room temperature test gas mixtures of n-dodecane with equivalence ratios of up to 3.0 in 21 % O-2, three times the loading achievable in the earlier AST I that used a flow-through strategy. Improvements in aerosol uniformity were quantified by measuring the liquid volume concentration at multiple locations in the shock tube. The measurements made over a length of 1.1 m of shock tube indicate that the AST II method of filling produces non-uniformities in liquid volume concentration of less than 2 %, whereas in the AST I method of filling the non-uniformities reached 16 %. The improved uniformity can also be seen in measurement of gas-phase fuel concentration behind the incident shock wave after the liquid droplets have evaporated. Significant reduction in the scatter of ignition delay times measured using AST II have also been achieved, confirming the importance of uniform loading of the aerosol in making high-quality combustion measurements.
引用
收藏
页码:483 / 493
页数:11
相关论文
共 50 条
  • [1] Second-generation aerosol shock tube: an improved design
    D. R. Haylett
    D. F. Davidson
    R. K. Hanson
    [J]. Shock Waves, 2012, 22 : 483 - 493
  • [2] A second-generation constrained reaction volume shock tube
    Campbell, M. F.
    Tulgestke, A. M.
    Davidson, D. F.
    Hanson, R. K.
    [J]. REVIEW OF SCIENTIFIC INSTRUMENTS, 2014, 85 (05):
  • [3] Second-Generation Phosgene and Diphosgene Detection Tube
    Pitschmann, Vladimir
    Matejovsky, Lukas
    Zeman, Jiri
    Vetchy, David
    Dymak, Michal
    Lobotka, Martin
    Pavlokova, Sylvie
    Moravec, Zdenek
    [J]. CHEMOSENSORS, 2020, 8 (04) : 1 - 10
  • [4] Second generation shock tube calibration system
    Wisniewiski, David
    [J]. International Journal of Acoustics and Vibrations, 2012, 17 (03): : 133 - 138
  • [5] Second Generation Shock Tube Calibration System
    Wisniewiski, David
    [J]. INTERNATIONAL JOURNAL OF ACOUSTICS AND VIBRATION, 2012, 17 (03): : 133 - 138
  • [6] Second-generation zone plate antenna design
    Wiltse, JC
    [J]. TERAHERTZ AND GIGAHERTZ PHOTONICS, 1999, 3795 : 287 - 294
  • [7] An improved second-generation electrical capacitance tomography system
    Gamio, JC
    Waterfall, RC
    [J]. SENSORS AND THEIR APPLICATIONS VIII, 1997, : 163 - 168
  • [8] Computer Assisted Design of Second-Generation Colchicine Derivatives
    Huzil, J. Torin
    Mane, Jonathan
    Tuszynski, Jack A.
    [J]. INTERDISCIPLINARY SCIENCES-COMPUTATIONAL LIFE SCIENCES, 2010, 2 (02) : 169 - 174
  • [9] Towards optimal design of second-generation immunomodulatory oligonucleotides
    Kandimalla, ER
    Yu, D
    Agrawal, S
    [J]. CURRENT OPINION IN MOLECULAR THERAPEUTICS, 2002, 4 (02) : 122 - 129
  • [10] Design of sustainable second-generation biomass supply chains
    Yazan, Devrim Murat
    van Duren, Iris
    Mes, Martijn
    Kersten, Sascha
    Clancy, Joy
    Zijm, Henk
    [J]. BIOMASS & BIOENERGY, 2016, 94 : 173 - 186