Related Experiment Video
Updated: Jan 4, 2026

Non-equilibrium Microwave Plasma for Efficient High Temperature Chemistry
Published on: August 1, 2017
State-Resolved Dissociation and Exchange Reactions in CO2 Flows
Elena Kustova1, Aleksei Savelev1, Iole Armenise2
1Saint Petersburg State University , 7/9 Universitetskaya Nab. , Saint Petersburg 199034 , Russia.
State-resolved chemical reactions in carbon dioxide (CO2) were analyzed, revealing that reaction rate coefficients are sensitive to model parameters, especially for dissociation. Simulations of CO2 flows under Mars entry conditions showed significant impacts on chemical mechanisms based on chosen parameters.
Area of Science:
- Aerospace Engineering
- Chemical Kinetics
- Computational Fluid Dynamics
Background:
- Understanding chemical reactions in carbon dioxide (CO2) is crucial for modeling high-enthalpy flows, such as those encountered during planetary atmospheric entry.
- Previous models often simplified vibrational mode excitation and reaction mechanisms, potentially limiting accuracy.
Purpose of the Study:
- To investigate state-resolved chemical reactions in CO2, considering all vibrational modes and preferential reaction pathways.
- To assess the impact of various parameters on reaction rate coefficients and their influence on CO2 flow dynamics under Mars entry conditions.
Main Methods:
- Developed state-to-state simulation models for CO2 chemical reactions, incorporating all vibrational modes.
- Implemented these models into a one-dimensional boundary layer code for simulating nonequilibrium CO2 flows.
- Analyzed vibrational distributions, mixture composition, flow variables, and heat flux using different kinetic schemes and chemical reaction models.
Main Results:
- The nonequilibrium factor for exchange reactions is less sensitive to the number of vibrational states than for dissociation.
- Thermal equilibrium Arrhenius law parameters significantly impact predicted rate coefficients for both exchange and dissociation reactions.
- Simulations under Mars entry conditions demonstrated that the choice of kinetic parameters (Park vs. McKenzie) drastically alters chemical mechanisms, with recombination dominating in the McKenzie model and frozen chemistry in the Park model.
Conclusions:
- Accurate prediction of CO2 chemical reaction rates requires careful selection of model parameters, particularly Arrhenius parameters.
- The study provides valuable insights into the complex chemical kinetics governing CO2 flows during Mars entry, with implications for thermal protection system design.
- The developed models show satisfactory agreement with experimental data for heat flux contributions.
More Related Videos
10:18Dynamic Pore-scale Reservoir-condition Imaging of Reaction in Carbonates Using Synchrotron Fast Tomography
Published on: February 21, 2017
10:57Synthesis and Performance Characterizations of Transition Metal Single Atom Catalyst for Electrochemical CO2 Reduction
Published on: April 10, 2018
Related Concept Videos
Types of Chemical Reactions: Exchange and Reversible
A special kind of exchange reaction is the oxidation-reduction reaction, or the redox reaction. These reactions involve the transfer of electrons from one compound to another. The electrons in these reactions commonly come from hydrogen atoms, which consist of an electron and a proton. A molecule gives up a...
Carbon Dioxide Transport in the Blood
Forms of CO2 Transport
1. Dissolved in plasma: A small percentage (7-10%) of CO2 is transported and dissolved directly in the plasma.
2. Carbaminohemoglobin: Just over 20% of CO2 is chemically bound to...
Introduction to Chemical Reactions
Turbulent Flow: Problem Solving
Temperature is a key factor in CO2 solubility. In this case, the CO2 gas and the liquid are cooled to 20°C. Lower temperatures enhance...
Free Energy Changes for Nonstandard States
Ion Exchange