Return map analysis of the highly nonlinear Bray-Liebhafsky reaction model
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2016
Authors
Čupić, ŽeljkoIvanović-Šašić, Ana
Blagojević, Stevan
Blagojević, Slavica
Kolar-Anić, Ljiljana
Anić, Slobodan
Article (Published version)
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By numerically simulated Bray-Liebhafsky (BL) reaction under a continuously fed well stirred tank reactor (CSTR) conditions, we discussed the attractors and Poincar, 1D maps with respect to flow rate as the control parameter. The new technique of the return maps from transient trajectories over the slow manifold is developed and applied in order to explore its multilayered structure related to dynamical states (periodic and aperiodic -chaotic oscillating modes) of the system. Kinetic relations underlying the slow manifold structure are briefly discussed.
Keywords:
Nonlinear dynamics / Return maps / Bray-Liebhafsky oscillatory reaction / Slow manifoldsSource:
Reaction Kinetics, Mechanisms and Catalysis, 2016, 118, 1, 27-38Publisher:
- Springer Netherlands
Funding / projects:
- Dynamics of nonlinear physicochemical and biochemical systems with modeling and predicting of their behavior under nonequilibrium conditions (RS-172015)
- Nanostructured Functional and Composite Materials in Catalytic and Sorption Processes (RS-45001)
DOI: 10.1007/s11144-016-0998-5
ISSN: 1878-5190
WoS: 000376107700004
Scopus: 2-s2.0-84965180952
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IHTMTY - JOUR AU - Čupić, Željko AU - Ivanović-Šašić, Ana AU - Blagojević, Stevan AU - Blagojević, Slavica AU - Kolar-Anić, Ljiljana AU - Anić, Slobodan PY - 2016 UR - https://cer.ihtm.bg.ac.rs/handle/123456789/2013 AB - By numerically simulated Bray-Liebhafsky (BL) reaction under a continuously fed well stirred tank reactor (CSTR) conditions, we discussed the attractors and Poincar, 1D maps with respect to flow rate as the control parameter. The new technique of the return maps from transient trajectories over the slow manifold is developed and applied in order to explore its multilayered structure related to dynamical states (periodic and aperiodic -chaotic oscillating modes) of the system. Kinetic relations underlying the slow manifold structure are briefly discussed. PB - Springer Netherlands T2 - Reaction Kinetics, Mechanisms and Catalysis T1 - Return map analysis of the highly nonlinear Bray-Liebhafsky reaction model VL - 118 IS - 1 SP - 27 EP - 38 DO - 10.1007/s11144-016-0998-5 ER -
@article{ author = "Čupić, Željko and Ivanović-Šašić, Ana and Blagojević, Stevan and Blagojević, Slavica and Kolar-Anić, Ljiljana and Anić, Slobodan", year = "2016", abstract = "By numerically simulated Bray-Liebhafsky (BL) reaction under a continuously fed well stirred tank reactor (CSTR) conditions, we discussed the attractors and Poincar, 1D maps with respect to flow rate as the control parameter. The new technique of the return maps from transient trajectories over the slow manifold is developed and applied in order to explore its multilayered structure related to dynamical states (periodic and aperiodic -chaotic oscillating modes) of the system. Kinetic relations underlying the slow manifold structure are briefly discussed.", publisher = "Springer Netherlands", journal = "Reaction Kinetics, Mechanisms and Catalysis", title = "Return map analysis of the highly nonlinear Bray-Liebhafsky reaction model", volume = "118", number = "1", pages = "27-38", doi = "10.1007/s11144-016-0998-5" }
Čupić, Ž., Ivanović-Šašić, A., Blagojević, S., Blagojević, S., Kolar-Anić, L.,& Anić, S.. (2016). Return map analysis of the highly nonlinear Bray-Liebhafsky reaction model. in Reaction Kinetics, Mechanisms and Catalysis Springer Netherlands., 118(1), 27-38. https://doi.org/10.1007/s11144-016-0998-5
Čupić Ž, Ivanović-Šašić A, Blagojević S, Blagojević S, Kolar-Anić L, Anić S. Return map analysis of the highly nonlinear Bray-Liebhafsky reaction model. in Reaction Kinetics, Mechanisms and Catalysis. 2016;118(1):27-38. doi:10.1007/s11144-016-0998-5 .
Čupić, Željko, Ivanović-Šašić, Ana, Blagojević, Stevan, Blagojević, Slavica, Kolar-Anić, Ljiljana, Anić, Slobodan, "Return map analysis of the highly nonlinear Bray-Liebhafsky reaction model" in Reaction Kinetics, Mechanisms and Catalysis, 118, no. 1 (2016):27-38, https://doi.org/10.1007/s11144-016-0998-5 . .