Cellular Cell Bifurcation of Cylindrical Detonations
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Abstract
Cellular cell pattern evolution of cylindrically-diverging detonations is numerically simulated successfully by solving two-dimensional Euler equations implemented with an improved two-step chemical kinetic model. From the
simulation, three cell bifurcation modes are observed during the evolution and referred to as concave front focusing, kinked and wrinkled wave front instability, and self-merging of cellular cells. Numerical research demonstrates that the wave front expansion resulted from detonation front diverging plays a major role in the cellular cell bifurcation, which can disturb the nonlinearly
self-sustained mechanism of detonations and finally lead to cell bifurcations.
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Cite this article:
HAN Gui-Lai, JIANG Zong-Lin, WANG Chun, ZHANG Fan. Cellular Cell Bifurcation of Cylindrical Detonations[J]. Chin. Phys. Lett., 2008, 25(6): 2125-2127.
HAN Gui-Lai, JIANG Zong-Lin, WANG Chun, ZHANG Fan. Cellular Cell Bifurcation of Cylindrical Detonations[J]. Chin. Phys. Lett., 2008, 25(6): 2125-2127.
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HAN Gui-Lai, JIANG Zong-Lin, WANG Chun, ZHANG Fan. Cellular Cell Bifurcation of Cylindrical Detonations[J]. Chin. Phys. Lett., 2008, 25(6): 2125-2127.
HAN Gui-Lai, JIANG Zong-Lin, WANG Chun, ZHANG Fan. Cellular Cell Bifurcation of Cylindrical Detonations[J]. Chin. Phys. Lett., 2008, 25(6): 2125-2127.
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