期刊
JOURNAL OF PHYSICAL CHEMISTRY A
卷 123, 期 38, 页码 8083-8088出版社
AMER CHEMICAL SOC
DOI: 10.1021/acs.jpca.9b05238
关键词
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资金
- Natural Science and Engineering Research Council (NSERC) of Canada
- Spanish Ministerio de Economia y Competitividad
- Xunta de Galicia [2018-PG082, AGRUP2015/02]
- FEDER (UE)
- European Regional Development Fund [RTI2018-097063-B-I00]
Nonisothermal chemical oscillators are poorly studied systems because chemical oscillations are conventionally studied under isothermal conditions. Coupling chemical reactions with heat generation and removal in a nonisothermal oscillatory system can lead to a highly nontrivial nonlinear dynamic behavior. For the current study, we considered the three-variable Oregonator model with the temperature incorporated as a variable (not a parameter), thus adding an energy balance to the set of equations. The effect of temperature on reaction rates is included through the temperature-dependent reaction rate coefficients (Arrhenius law). To model a continuous operation in a laboratory environment, the system was subjected to external forcing through the coolant temperature and infrared irradiation. By conducting numerical simulations and parametric studies, we found that the system is capable of a resonant behavior exhibiting induced oscillations. Our findings indicate that an external source of heat (e.g., via an infrared light emitting diode) can be used to induce a Hopf bifurcation under resonant Belousov-Zhabotinsky reactor. conditions in an experimental
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