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◆ Journal of CO2 Utilization2026-02-03· Plasma

CO2 and CH4 conversion in a rotating DC glow to arc plasma with big discharge gap

Samuel Jaro Kaufmann, Joe Quade, Johanna Buschmann, Haripriya Chinnaraj, Kai Peter Birke, Paul Rößner

原始摘要(英文原文)· Original abstract
In this work, we investigated large-volume, non-thermal discharges in CO₂/CH₄ mixtures with the aim of enabling energy-efficient plasma-based conversion. Building on the fundamental U–I characteristics of gas discharges, we showed how discharge extension and thermal management strongly affect the transition between glow and arc regimes. Using our Big Discharge-gap Glow-to-Arc (BDGTA) reactor, stable rotating discharges were realized at electrode gaps up to 40 mm. Depending on scale, plasma operation was achieved with average currents of 0.24–0.4 A and discharge voltages ranging from 1.5 kV (15 mm) to 4 kV (40 mm), corresponding to power levels between 400 and 1700 W. Optical diagnostics via high-speed camera confirmed the glow-like nature and the dynamics of the elongated discharges. Performance analysis revealed maximum energy efficiencies of 68 % (60 % CO 2 , 40 % CH 4 ) and 60 % for 50/50 mixtures, with conversions up to 68 %. Carbon deposition in methane-rich mixtures was identified as a key challenge but can be mitigated through process adjustments like CO₂ recycling. Replacing ballast resistors with power-electronics plasma control minimized energy losses and ensured regime stability. Overall, the BDGTA reactor demonstrates that efficient, large-volume CO₂/CH₄ plasma conversion is feasible at atmospheric pressure, offering a pathway for sustainable electrification of chemical processes. • Stable, non-thermal glow and glow-to-arc discharges with electrode distances of up to 40 mm were achieved in the novel BDGTA reactor. • Energy efficiencies of up to 68 % and overall conversions of up to 68 % were achieved in dry reforming of methane (50/50 and 60/40 CO 2 /CH 4 mixtures)—values that are in line with established APGD and gliding arc systems. • The BDGTA reactor demonstrated stable operating modes at power levels between 400 W and 1.7 kW, with average currents of 0.24–0.4 A and voltages up to 4 kV, demonstrating the technical scalability of the concept. • Replacing traditional ballast resistors with power electronic current control minimized energy losses (up to 45 % savings) and enabled precise control and stabilization of the discharge regime.
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CO2 and CH4 conversion in a rotating DC glow to arc plasma with big discharge gap — 科研速览 Science Skim