Article ID Journal Published Year Pages File Type
155800 Chemical Engineering Science 2012 12 Pages PDF
Abstract

Networks of catalytic reactors with periodically rotated inlet and outlet ports are studied. A first order irreversible exothermic reaction is considered and the influence of thermal dispersion on the stability limits of periodic regimes corresponding to trains of traveling temperature waves is examined. The dependence of the minimum adiabatic temperature rise sustaining the emergence of temperature wave trains on the enthalpy Peclet number, and on the structure of the spatiotemporal temperature pattern (number of waves and average wave width) is described. The mechanisms determining the evolution of the maximum temperature with the adiabatic temperature rise, the enthalpy Peclet number, the switch time, and the structure of the spatiotemporal temperature pattern are identified. The results provide indications on how to design and operate the network so as to generate temperature wave trains with prescribed structure, maximum temperature and stability limits.

► Network of N catalytic reactors with end ports periodically rotated of ns reactors. ► Effect of thermal dispersion on stability and on maximum of temperature wave trains. ► Minimum adiabatic temperature rise sustaining autothermal operation increases with number of waves and decreases with wave width. ► Maximum bed temperature decreases with the number of waves and increases with the wave width. ► The number of solutions increases with ns at low adiabatic temperature rise values.

Related Topics
Physical Sciences and Engineering Chemical Engineering Chemical Engineering (General)
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