Abstract
The C4F7N–CO2–O2 mixture has emerged as one of the most promising environmentally friendly alternatives to SF6 and is gradually being adopted in high-voltage circuit breakers. Under the intense ablation of the nozzle by switching arcs, both C4F7N and polytetrafluoroethylene (PTFE), as carbon–fluorine compounds, inevitably undergo graphite condensation during arc extinction—a process which often significantly deviates from the assumption of local thermodynamic equilibrium. In order to accurately elucidate the effects of non-equilibrium conditions and graphite formation, a novel method was employed to calculate the composition and thermophysical properties of a multi-temperature [C4F7N–CO2–O2]-PTFE mixture. The results indicate that graphite condensation markedly alters the species composition and thermophysical parameters in the low-temperature plasma, and that the admixture of PTFE vapour has a substantial impact on solid carbon formation. The multi-temperature model affects the thermodynamic and transport properties of the plasma by modifying both heavy-particle energy and chemical reaction progression, particularly under strongly non-equilibrium conditions. These results provide essential baseline data for the non-equilibrium arc modelling of C4F7N-based gas mixtures.
| Original language | English |
|---|---|
| Article number | 435501 |
| Journal | Journal of Physics D: Applied Physics |
| Volume | 58 |
| Issue number | 43 |
| DOIs | |
| State | Published - 27 Oct 2025 |
Keywords
- C4F7N
- PTFE
- arc
- graphite condensation
- non-equilibrium plasma
- thermodynamic properties
- transport coefficients
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