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Dissociation cross section for high energy O2-O2 collisions.
T K Mankodi1, U V Bhandarkar1, B P Puranik1
1Department of Mechanical Engineering, Indian Institute of Technology Bombay, Mumbai, India.
A new database of oxygen-oxygen collision cross sections was created. This database accurately models hypersonic oxygen flow, offering advantages over traditional methods for complex, non-equilibrium conditions.
Area of Science:
- Aerospace Engineering
- Chemical Physics
- Computational Chemistry
Background:
- Accurate modeling of high-energy collisions is crucial for understanding hypersonic flows.
- Existing chemical models may not fully capture the complexities of non-equilibrium reactive flows.
- Ab initio methods offer a pathway to more precise collision dynamics calculations.
Purpose of the Study:
- To generate a comprehensive database of collision-induced dissociation cross sections for O2-O2 collisions.
- To validate the database against experimental data under equilibrium conditions.
- To apply the database in simulating complex hypersonic flow phenomena.
Main Methods:
- Utilized the quasiclassical trajectory method.
- Employed singlet, triplet, and quintet spin ground state O4 potential energy surfaces.
- Performed Direct Simulation Monte Carlo (DSMC) simulations for hypersonic flow.
Main Results:
- Generated a cross section database for O2-O2 collisions up to 30 eV.
- Predicted reaction rate coefficients that align with experimental findings at equilibrium.
- Demonstrated the utility of the ab initio database in simulating high-enthalpy hypersonic oxygen flow over a cylinder.
Conclusions:
- The ab initio-based cross section database provides accurate predictions for O2-O2 collisions.
- This database offers significant advantages for studying complex, non-equilibrium flow conditions compared to phenomenological models.
- The study highlights the potential of advanced computational methods for enhancing fluid dynamics simulations.
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