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March 3, 2026Plasma Sources Science and Technology0 citationsOpen Access

Formation of gradients of atomic oxygen in nanosecond plasma for plasma-assisted detonation: experimental and numerical study

VLVictor LafaurieZSZhan ShuBZBin Zhang

Key Points

  • Atomic oxygen density gradients were generated across a 10 cm span in a nanosecond discharge setup, enhancing combustion efficiency.
  • Measurements of atomic oxygen density confirmed a significant gradient presence, indicating effective control for ignition applications.
  • Observational analysis involved a plane-to-plane discharge setup at 150 mbar air pressure, linked with two experimental techniques to measure the reduced electric field.
  • The findings highlight how non-uniform energy deposition leads to atomic oxygen density variations, suggesting future applications in detonation systems.

Abstract

Abstract This work aims at producing a gradient of atomic oxygen on a scale of 10 cm in a plane-to-plane nanosecond discharge in 150 mbar of air with a varying gap size for applications in combustion and ignition of detonation waves. Local measurements of atomic oxygen density along the discharge span, at varying heights between high-voltage and grounded electrode, are performed with Xe calibrated O-TALIF and validated by 2D numerical modelling. They both show existence of a gradient of atomic density of oxygen along the span. Reduced electric field is measured with two experimental techniques: optical emission spectroscopy by a spectral band intensity ratio of the first negative system and the second positive system of nitrogen, and E-FISH. It is also compared with numerical modelling. All techniques show existence of a gradient of reduced electric field along the span. This distribution of reduced electric field, in combination with the non-uniform energy deposition in the plasma, is shown to explain the measured gradient of density of atomic oxygen.

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Cite This Study

Lafaurie et al. (2026) studied this question.

synapsesocial.com/papers/69a75ddbc6e9836116a28223https://doi.org/10.1088/1361-6595/ae3f53
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