Reacting Flow Plasma

To compute plasma reaction rates, the Electron (E) is treated as a regular species for which the species transport equation Eqn. (1871) is solved similar to other species and ions in the plasma.

To calculate reaction rates of electron impact reactions (as indicated by the TDEP keyword in the Chemkin mechanism), the Complex Chemistry model then uses the computed mass fraction Y E of Electron (E) together with the electron temperature as computed by the Coupled Plasma Electron model according to Eqn. (4189).

The Complex Chemistry model computes the Electron reaction source ωe in Eqn. (3412). This reaction source is added to the electron number density equation of the Coupled Plasma electron model:

Figure 1. EQUATION_DISPLAY
net+Γe=Se+ωe
(4198)

The energy loss due to inelastic electron impact reactions (as indicated by the EXCI keyword in the Chemkin mechanism) is given by:

Figure 2. EQUATION_DISPLAY
Qlossinel=Vr=0IeiΔHrqr
(4199)

where V is the volume, Iei is the number of electron-impact (TDEP) reactions, ΔHr is the energy loss per collision provided by the Chemkin mechanism through the EXCI keyword, and qr is the reaction rate.

The electron energy density transport equation is then modified to:

Figure 3. EQUATION_DISPLAY
et+Γ=SQlossinel
(4200)