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Long-gap ignition using femtosecond laser filament-triggered discharge

Zhu, Zhifeng ; Li, Bo ; Gao, Qiang ; Gao, Ercong and Li, Zhongshan LU (2022) In Optics and Laser Technology 156.
Abstract

Ignition has a significant impact on combustion efficiency and combustion emissions. Long-gap spark discharge ignition can increase the initial flame kernel and reduce the flame propagation time. However, long-gap spark discharge ignition requires increased discharge voltage and suffers from the fluctuation in ignition time and position. Here, we propose a long-gap ignition technique using femtosecond laser filament-triggered discharge. Femtosecond laser filaments are used to trigger and control long-gap discharges to generate precisely controlled plasma lines in space for ignition. The fluctuation in ignition time can be largely reduced to be on the order of nanoseconds, and the ignition position can be strictly defined by the... (More)

Ignition has a significant impact on combustion efficiency and combustion emissions. Long-gap spark discharge ignition can increase the initial flame kernel and reduce the flame propagation time. However, long-gap spark discharge ignition requires increased discharge voltage and suffers from the fluctuation in ignition time and position. Here, we propose a long-gap ignition technique using femtosecond laser filament-triggered discharge. Femtosecond laser filaments are used to trigger and control long-gap discharges to generate precisely controlled plasma lines in space for ignition. The fluctuation in ignition time can be largely reduced to be on the order of nanoseconds, and the ignition position can be strictly defined by the femtosecond laser filament between the two electrodes. Also, compared with long-gap spark discharge ignition, femtosecond laser filament-triggered discharge ignition can reduce the fluctuation in the flame shape. Femtosecond laser filament-triggered discharge ignition extends the lean ignition limit of methane-air mixtures. In addition, femtosecond laser-triggered discharge can also lower the discharge breakdown threshold, so longer plasma lines can be obtained at the same voltage compared with spark discharge ignition. The extension of the plasma length can generate a larger initial flame kernel. A larger initial flame kernel can increase the flame front area and hence, reduce the flame propagation time.

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Please use this url to cite or link to this publication:
author
; ; ; and
organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
Combustion, Femtosecond laser, Ignition, Long-gap discharge
in
Optics and Laser Technology
volume
156
article number
108611
publisher
Elsevier
external identifiers
  • scopus:85136520324
ISSN
0030-3992
DOI
10.1016/j.optlastec.2022.108611
language
English
LU publication?
yes
additional info
Funding Information: National Natural Science Foundation of China (NSFC) (52176169, 62175208). Publisher Copyright: © 2022 Elsevier Ltd
id
4b8fc43b-2ffb-4dcf-bd2a-ca79d24ed3cf
date added to LUP
2022-09-22 14:05:50
date last changed
2023-11-21 17:03:15
@article{4b8fc43b-2ffb-4dcf-bd2a-ca79d24ed3cf,
  abstract     = {{<p>Ignition has a significant impact on combustion efficiency and combustion emissions. Long-gap spark discharge ignition can increase the initial flame kernel and reduce the flame propagation time. However, long-gap spark discharge ignition requires increased discharge voltage and suffers from the fluctuation in ignition time and position. Here, we propose a long-gap ignition technique using femtosecond laser filament-triggered discharge. Femtosecond laser filaments are used to trigger and control long-gap discharges to generate precisely controlled plasma lines in space for ignition. The fluctuation in ignition time can be largely reduced to be on the order of nanoseconds, and the ignition position can be strictly defined by the femtosecond laser filament between the two electrodes. Also, compared with long-gap spark discharge ignition, femtosecond laser filament-triggered discharge ignition can reduce the fluctuation in the flame shape. Femtosecond laser filament-triggered discharge ignition extends the lean ignition limit of methane-air mixtures. In addition, femtosecond laser-triggered discharge can also lower the discharge breakdown threshold, so longer plasma lines can be obtained at the same voltage compared with spark discharge ignition. The extension of the plasma length can generate a larger initial flame kernel. A larger initial flame kernel can increase the flame front area and hence, reduce the flame propagation time.</p>}},
  author       = {{Zhu, Zhifeng and Li, Bo and Gao, Qiang and Gao, Ercong and Li, Zhongshan}},
  issn         = {{0030-3992}},
  keywords     = {{Combustion; Femtosecond laser; Ignition; Long-gap discharge}},
  language     = {{eng}},
  publisher    = {{Elsevier}},
  series       = {{Optics and Laser Technology}},
  title        = {{Long-gap ignition using femtosecond laser filament-triggered discharge}},
  url          = {{http://dx.doi.org/10.1016/j.optlastec.2022.108611}},
  doi          = {{10.1016/j.optlastec.2022.108611}},
  volume       = {{156}},
  year         = {{2022}},
}