Numerical modeling of self-propagating polymerization fronts: The role of kinetics on front stability

被引:48
|
作者
Solovyov, SE
Ilyashenko, VM
Pojman, JA
机构
[1] Department of Chemistry and Biochemistry, University of Southern Mississippi, Haltiesburg, MS
关键词
D O I
10.1063/1.166248
中图分类号
O29 [应用数学];
学科分类号
070104 ;
摘要
Frontal propagation of a highly exothermic polymerization reaction in a liquid is studied with the goal of developing a mathematical model of the process. As a model case we consider monomers such as methacrylic acid and n-butyl acrylate with peroxide initiators, although the model is not limited to these reactants and can be applied to any system with the similar basic polymerization mechanism. A three-step reaction mechanism, including initiation, propagation and termination steps, as well as a more simple one-step mechanism, were considered. For the one-step mechanism the loss of stability of propagating front was observed as a sequence of period doubling bifurcations of the front velocity. It was shown that the one-step model cannot account for less than 100% conversion and product inhomogeneities as a result of front instability, therefore the three-step mechanism was exploited. The phenomenon of superadiabatic combustion temperature was observed beyond the Hopf bifurcation point for both kinetic schemes and supported by the experimental measurements. One- and two-dimensional numerical simulations were performed to observe various planar and nonplanar periodic modes, and the results for different kinetic schemes were compared. It was found that stability of the frontal mode for a one-step reaction mechanism does not differ for 1-D and 2-D cases. For the three-step reaction mechanism 2-D solutions turned out to be more stable with respect to the appearance of nonplanar periodic modes than corresponding 1-D solutions. Higher Zeldovich numbers (i.e., higher effective activation energies or lower initial temperatures) are necessary for the existence of planar and nonplanar periodic modes in the 2-D reactor with walls than in the 1-D case. (C) 1997 American Institute of Physics.
引用
收藏
页码:331 / 340
页数:10
相关论文
共 50 条
  • [31] Frontal polymerization: Self-propagating high-temperature synthesis of polymeric materials
    Pojman, JA
    Fortenberry, D
    Khan, A
    Ilyashenko, V
    SYNTHESIS AND CHARACTERIZATION OF ADVANCED MATERIALS, 1998, 681 : 220 - 235
  • [32] Stability Criteria for Self-Propagating Reaction Waves in Co/Al Multilayers
    Abere, Michael J.
    V. Reeves, Robert V.
    Kittell, David E.
    Sobczak, Catherine
    Adams, David P.
    ACS APPLIED MATERIALS & INTERFACES, 2023, 15 (17) : 21210 - 21218
  • [33] TEMPERATURE ENTHALPY APPROACH TO THE MODELING OF SELF-PROPAGATING COMBUSTION SYNTHESIS OF MATERIALS
    BHATTACHARYA, AK
    JOURNAL OF MATERIALS SCIENCE, 1992, 27 (11) : 3050 - 3061
  • [34] Modeling the behaviour of science and technology: self-propagating growth in the diffusion process
    Wong, Chan-Yuan
    Goh, Kim-Leng
    SCIENTOMETRICS, 2010, 84 (03) : 669 - 686
  • [35] Modeling the behaviour of science and technology: self-propagating growth in the diffusion process
    Chan-Yuan Wong
    Kim-Leng Goh
    Scientometrics, 2010, 84 : 669 - 686
  • [36] Modeling the ignition of self-propagating combustion synthesis of transition metal aluminides
    Gennari, Silvia
    Anselmi-Tamburini, Umberto
    Maglia, Filippo
    Spinolo, Giorgio
    INTERMETALLICS, 2010, 18 (12) : 2385 - 2393
  • [37] Anisotropy of the characteristics of products behind the front of self-propagating high-temperature synthesis
    Shkadinskii, KG
    Firsov, AN
    COMBUSTION EXPLOSION AND SHOCK WAVES, 1996, 32 (06) : 667 - 673
  • [38] Kinetics and numerical simulation of self-propagating high-temperature synthesis in Ti-Cr-Al-C systems
    Ying, Guo-Bing
    He, Xiao-Dong
    Du, Shan-Yi
    Zheng, Yong-Ting
    Zhu, Chun-Cheng
    Wu, Yu-Ping
    Wang, Cheng
    RARE METALS, 2014, 33 (05) : 527 - 533
  • [39] STATIONARY SELF-PROPAGATING FRONTS IN POTENTIAL FLOW (VOL D79, PG 306, 1994)
    BREWSTER, ME
    PHYSICA D, 1995, 82 (1-2): : 216 - 216
  • [40] Numerical analysis of combustion/self-propagating high-temperature synthesis dynamics
    Li, Hung-Pin
    Journal of the Chinese Institute of Engineers, Transactions of the Chinese Institute of Engineers,Series A/Chung-kuo Kung Ch'eng Hsuch K'an, 1994, 17 (04): : 557 - 567