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10
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0000037738
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K. J. Lee, W. D. McCormick, Q. Ouyang, and H. L. Swinney, Science 261, 192 (1993).
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Science
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Lee, K.J.1
McCormick, W.D.2
Ouyang, Q.3
Swinney, H.L.4
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11
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0000546074
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G. Haas, M. Bär, I. G. Kevrekidis, P. B. Rasmussen, H.-H. Rotermund, and G. Ertl, Phys. Rev. Lett. 75, 3560 (1995).
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Haas, G.1
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Rotermund, H.-H.5
Ertl, G.6
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13
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T. Frisch, S. Rica, P. Coullet, and J. M. Gilli, Phys. Rev. Lett. 72, 1471 (1994).
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Phys. Rev. Lett.
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Frisch, T.1
Rica, S.2
Coullet, P.3
Gilli, J.M.4
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16
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0000733852
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A. L. Lin, M. Bertram, K. Martinez, H. L. Swinney, A. Ardelea, and G. F. Carey, Phys. Rev. Lett. 84, 4240 (2000).
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Phys. Rev. Lett.
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Lin, A.L.1
Bertram, M.2
Martinez, K.3
Swinney, H.L.4
Ardelea, A.5
Carey, G.F.6
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17
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0343823423
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edited by M. Golubitzky, D. Luss, and S. H. Strogatz Springer, Berlin
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A. L. Lin, V. Petrov, H. L. Swinney, A. Ardelea, and G. F. Carey, in Pattern Formation in Continuous and Coupled Systems, edited by M. Golubitzky, D. Luss, and S. H. Strogatz (Springer, Berlin, 1999).
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Pattern Formation in Continuous and Coupled Systems
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Lin, A.L.1
Petrov, V.2
Swinney, H.L.3
Ardelea, A.4
Carey, G.F.5
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20
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0342933209
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note
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-3 M Tris(2,2′-bipyridyl) dichlororuthenium (II) hexahydrate, 0.80 M sulfuric acid. Each reservoir volume is 8.3 ml and the flow rate of chemicals through Reservoir I was 20 ml/h while through Reservoir II it was 5 ml/h. Chemicals were premixed before entering each reservoir; a 10 ml premixer and a 0.5 ml premixer fed Reservoirs I and II, respectively. The experiments were conducted at room temperature.
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21
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0000494953
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Diagrams of the reactor are presented in Fig. 2 of Q. Ouyang and H. L. Swinney, Chaos 1, 411 (1991), and in Fig. 1 of Q. Ouyang, R. Li, G. Li, and H. L. Swinney, J. Chem. Phys. 102, 2551 (1995).
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(1991)
Chaos
, vol.1
, pp. 411
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Ouyang, Q.1
Swinney, H.L.2
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22
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36449002257
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and in Fig. 1 of
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Diagrams of the reactor are presented in Fig. 2 of Q. Ouyang and H. L. Swinney, Chaos 1, 411 (1991), and in Fig. 1 of Q. Ouyang, R. Li, G. Li, and H. L. Swinney, J. Chem. Phys. 102, 2551 (1995).
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(1995)
J. Chem. Phys.
, vol.102
, pp. 2551
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Ouyang, Q.1
Li, R.2
Li, G.3
Swinney, H.L.4
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23
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0343368659
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note
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3.
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24
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0342933208
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note
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The front width is determined by √DT where D is the diffusion coefficient and T is the time scale of the reaction kinetics. In Eq. (2) D = 1 (the spatial coordinate can always be rescaled to set D = 1) and T=1/μ where μ measures the distance from the Hopf bifurcation. The front width is therefore proportional to 1/√μ. The front width can also be read from the solutions in Eq. (6).
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25
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11944259553
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P. Coullet, J. Lega, B. Houchmanzadeh, and J. Lajzerowicz, Phys. Rev. Lett. 65, 1352 (1990).
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(1990)
Phys. Rev. Lett.
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, pp. 1352
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Coullet, P.1
Lega, J.2
Houchmanzadeh, B.3
Lajzerowicz, J.4
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28
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0001975442
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M. Bode, A. Reuter, R. Schmeling, and H.-G. Purwins, Phys. Lett. A 185, 70 (1994).
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(1994)
Phys. Lett. A
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, pp. 70
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Bode, M.1
Reuter, A.2
Schmeling, R.3
Purwins, H.-G.4
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30
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0342933206
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unpublished
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A. Ardelea, A. Pardhanani, G. F. Carey, M. Bertram, A. L. Lin, and H. L. Swinney (unpublished).
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Ardelea, A.1
Pardhanani, A.2
Carey, G.F.3
Bertram, M.4
Lin, A.L.5
Swinney, H.L.6
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