Detailed kinetic modeling of ethane oxidation
نویسندگان
چکیده
A detailed chemical kinetic model has been developed for ethane oxidation that is applicable over a wide range of temperatures and pressures. This model incorporates the results of recent ab initio studies of the important lowtemperature pathways of the C2H5 + O2 reaction as well as several C2H6 + RO2 abstraction reactions. These results change significantly the nature of the chain-branching reactions in ethane oxidation. The temperature and pressure dependencies of the rate coefficients in the model are represented by Chebyshev polynomials. The model predictions were compared to a variety of data, which include different reactor types and cover a wide range of temperatures, pressures, and equivalence ratios. These experiments include high-pressure flow reactor studies of lean ethane oxidation, PSR studies of both lean and rich ethane oxidation at different pressures, shock-tube studies of ethane oxidation and pyrolysis, and low-pressure flame experiments. The current model, with no adjustments, describes the experimental data reasonably well. A first-order sensitivity analysis identified the most important reactions in each of the kinetic regimes. The implications of inclusion of the concerted elimination of HO2 from ethylperoxy on hydrocarbon ignition are discussed. 2006 The Combustion Institute. Published by Elsevier Inc. All rights reserved.
منابع مشابه
Experimental Measurement and Kinetic Modeling of Ethane Gas Hydrate in the Presence of Sodium Dodecyl Sulfate Surfactant
 Abstract: In this work, the kinetics of ethane hydrate formation has been studied experimentally and a kinetic model based on chemical affinity has been described for predicting the hydrate growth process in the stirred batch reactor at a constant volume. The experiments were done with both pure water and aqueous solution of sodium dodecyl sulfate (SDS). The effect of SDS on formation kineti...
متن کاملSHAHAB-A PC-Based Software for Simulation of Steam Cracking Furnaces (Ethane and Naphtha)
SHAHAB is a PC- based simulator developed by Olefin Research Group (ORG), with the simultaneous simulation of the reactor, the firebox, the convection section and the transfer line exchanger in steam Cracking units. The reaction mechanism of thermal cracking of hydrocarbons is generally accepted as free-radical chain reactions. Using a rigorous kinetic model, a complete reaction network for rep...
متن کاملModeling of On-line Catalyst Addition Effects in a Short Contact Time Reactor
This paper describes a computational study of the partial oxidation of ethane to ethylene in a shortcontact-time reactor (SCTR), using a two-dimensional computational fluid dynamics model with full heat and mass transport. Detailed heterogeneous and homogeneous chemical kinetic mechanisms are employed to describe the chemistry. Emphasis is placed on simulating recent experiments in which the pl...
متن کاملKinetics and Mechanism of Ethane Oxidation to Acetic Acid on Catalysts Based on Mo-V-Nb Oxides
Kinetic and isotopic studies showed that C-H bond activation in ethane by surfaces essentially saturated with lattice oxygens is the sole kinetically relevant step in ethane oxidation on Mo-V-NbOx mixed oxides. These conclusions are consistent with the dependence of oxidation rates on O2 and C2H6 pressures, with H/D exchange and kinetic isotope effects, and with the preferential initial incorpo...
متن کاملKinetic modeling on photo oxidative degradation of C.I acid yellow 23 by UV/H_2 O_2 process
The kinetic of photo oxidative decolorization of C.I. Acid yellow 23 (AY23) was investigated in UV/ process. The semi-logarithmic of the concentrations of AY23 versus irradiation time were linear, suggesting pseudo-first order reaction. A simple kinetic model is proposed which confirms pseudo- first order reaction. The results indicate that the apparent reaction rate constant is a function of l...
متن کاملذخیره در منابع من
با ذخیره ی این منبع در منابع من، دسترسی به آن را برای استفاده های بعدی آسان تر کنید
عنوان ژورنال:
دوره شماره
صفحات -
تاریخ انتشار 2006