Anomalous Dispersion of Excitation Pulses in the 1,4−Cyclohexanedione Belousov−Zhabotinsky Reaction
The formation of stable bound wave packets is studied in a modified Belousov-Zhabotinsky reaction. These densely stacked structures arise from an attractive interaction between oxidation pulses that is not known from the classical Belousov-Zhabotinsky system. The characteristic stacking period incre...
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ndltd-fsu.edu-oai-fsu.digital.flvc.org-fsu_1824562020-06-13T03:07:23Z Anomalous Dispersion of Excitation Pulses in the 1,4−Cyclohexanedione Belousov−Zhabotinsky Reaction Hamik, Chad Thomas (authoraut) Steinbock, Oliver (professor directing thesis) Dalal, Naresh (committee member) Stiegman, Albert E. (committee member) Department of Chemistry and Biochemistry (degree granting department) Florida State University (degree granting institution) Text text Florida State University Florida State University English eng 1 online resource computer application/pdf The formation of stable bound wave packets is studied in a modified Belousov-Zhabotinsky reaction. These densely stacked structures arise from an attractive interaction between oxidation pulses that is not known from the classical Belousov-Zhabotinsky system. The characteristic stacking period increases with the initial concentration of bromate but decreases with cyclohexanedione. Wave stacking can also induce cascades of bunching events in which internally dense but mutually well-segregated wave clusters are formed. For different initial concentrations, the apparent merging of waves in front-to-back collisions is observed. All three modes of wave dynamics are analyzed in terms of their dispersion behavior. The dispersion relations proved to be anomalous in each case and revealed the existence of an attractor, which induces the formation of stable wave packets. The underlying mechanism has a pure reaction-diffusion character since wave propagation is not affected by fluid convection. At high initial concentrations of ferroin, complex relaxation kinetics which indicate the presence of at least two independent species that control the recovery and hence the dispersion behavior of the medium were detected. The stacking process creates either a traveling shock structure or a cascade of bunching events in which metastable wave packets are formed. The direction and the speed of the shock are explained in terms of a simple geometrical analysis. Experimental evidence for the corresponding instabilities in two-dimensional systems is presented. Here, wave stacking generates atypical structures in the collision of target patterns and wave bunching is accompanied by complex front deformations. Wave stacking and merging are also observed in thin reaction layers where they affect the evolution of target patterns. Additional results on the concentration dependences of the overall dynamics and pulse speeds are presented. A Thesis submitted to the Department of Chemistry and Biochemistry in partial fulfillment of the requirements for the degree of Master of Science. Fall Semester, 2003. August 18, 2003. Cyclohexanedione, Belousov−Zhabotinsky Reaction Includes bibliographical references. Oliver Steinbock, Professor Directing Thesis; Naresh Dalal, Committee Member; Albert E. Stiegman, Committee Member. Chemistry FSU_migr_etd-4307 http://purl.flvc.org/fsu/fd/FSU_migr_etd-4307 This Item is protected by copyright and/or related rights. You are free to use this Item in any way that is permitted by the copyright and related rights legislation that applies to your use. For other uses you need to obtain permission from the rights-holder(s). The copyright in theses and dissertations completed at Florida State University is held by the students who author them. http://diginole.lib.fsu.edu/islandora/object/fsu%3A182456/datastream/TN/view/Anomalous%20Dispersion%20of%20Excitation%20Pulses%20in%20the%201%2C4%E2%88%92Cyclohexanedione%20Belousov%E2%88%92Zhabotinsky%20Reaction.jpg |
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Chemistry Anomalous Dispersion of Excitation Pulses in the 1,4−Cyclohexanedione Belousov−Zhabotinsky Reaction |
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The formation of stable bound wave packets is studied in a modified Belousov-Zhabotinsky reaction. These densely stacked structures arise from an attractive interaction between oxidation pulses that is not known from the classical Belousov-Zhabotinsky system. The characteristic stacking period increases with the initial concentration of bromate but decreases with cyclohexanedione. Wave stacking can also induce cascades of bunching events in which internally dense but mutually well-segregated wave clusters are formed. For different initial concentrations, the apparent merging of waves in front-to-back collisions is observed. All three modes of wave dynamics are analyzed in terms of their dispersion behavior. The dispersion relations proved to be anomalous in each case and revealed the existence of an attractor, which induces the formation of stable wave packets. The underlying mechanism has a pure reaction-diffusion character since wave propagation is not affected by fluid convection. At high initial concentrations of ferroin, complex relaxation kinetics which indicate the presence of at least two independent species that control the recovery and hence the dispersion behavior of the medium were detected. The stacking process creates either a traveling shock structure or a cascade of bunching events in which metastable wave packets are formed. The direction and the speed of the shock are explained in terms of a simple geometrical analysis. Experimental evidence for the corresponding instabilities in two-dimensional systems is presented. Here, wave stacking generates atypical structures in the collision of target patterns and wave bunching is accompanied by complex front deformations. Wave stacking and merging are also observed in thin reaction layers where they affect the evolution of target patterns. Additional results on the concentration dependences of the overall dynamics and pulse speeds are presented. === A Thesis submitted to the Department of Chemistry and Biochemistry in partial fulfillment of the requirements for the degree of Master of Science. === Fall Semester, 2003. === August 18, 2003. === Cyclohexanedione, Belousov−Zhabotinsky Reaction === Includes bibliographical references. === Oliver Steinbock, Professor Directing Thesis; Naresh Dalal, Committee Member; Albert E. Stiegman, Committee Member. |
author2 |
Hamik, Chad Thomas (authoraut) |
author_facet |
Hamik, Chad Thomas (authoraut) |
title |
Anomalous Dispersion of Excitation Pulses in the 1,4−Cyclohexanedione Belousov−Zhabotinsky Reaction |
title_short |
Anomalous Dispersion of Excitation Pulses in the 1,4−Cyclohexanedione Belousov−Zhabotinsky Reaction |
title_full |
Anomalous Dispersion of Excitation Pulses in the 1,4−Cyclohexanedione Belousov−Zhabotinsky Reaction |
title_fullStr |
Anomalous Dispersion of Excitation Pulses in the 1,4−Cyclohexanedione Belousov−Zhabotinsky Reaction |
title_full_unstemmed |
Anomalous Dispersion of Excitation Pulses in the 1,4−Cyclohexanedione Belousov−Zhabotinsky Reaction |
title_sort |
anomalous dispersion of excitation pulses in the 1,4−cyclohexanedione belousov−zhabotinsky reaction |
publisher |
Florida State University |
url |
http://purl.flvc.org/fsu/fd/FSU_migr_etd-4307 |
_version_ |
1719319292516761600 |