2018-10-10T10:44:33Z
2018-10-10T10:44:33Z
2016-05-17
2018-10-10T10:44:33Z
The modeling of atmospheric gas, interacting with the space vehicles in re-entry conditions in planetary exploration missions, requires a large set of scattering data for all those elementary processes occurring in the system. A fundamental aspect of re-entry problems is represented by the strong non-equilibrium conditions met in the atmospheric plasma close to the surface of the thermal shield, where numerous interconnected relaxation processes determine the evolution of the gaseous system towards equilibrium conditions. A central role is played by the vibrational exchanges of energy, so that collisional processes involving vibrationally excited molecules assume a particular importance. In the present paper, theoretical calculations of complete sets of vibrationally state-resolved cross sections and rate coefficients are reviewed, focusing on the relevant classes of collisional processes: resonant and non-resonant electron-impact excitation of molecules, atom-diatom and molecule-molecule collisions as well as gas-surface interaction. In particular, collisional processes involving atomic and molecular species, relevant to Earth (N-2, O-2, NO), Mars (CO2, CO, N-2) and Jupiter (H-2, He) atmospheres are considered.
Article
Accepted version
English
Astrofísica del plasma; Vehicles espacials; Col·lisions (Física); Atmosfera; Plasma astrophysics; Space vehicles; Collisions (Physics); Atmosphere
Institute of Physics (IOP)
Versió postprint del document publicat a: https://doi.org/10.1088/0963-0252/25/3/033004
Plasma Sources Science & Technology, 2016, vol. 25, num. 3
https://doi.org/10.1088/0963-0252/25/3/033004
info:eu-repo/grantAgreement/EC/FP7/242311/EU//PHYS4ENTRY
(c) Institute of Physics (IOP), 2016