Ignition of Coal Microparticles by Laser Pulses of The Second Harmonic of a Ndodymium Laser in the Q-Switched Regime
- 作者: Aduev B.P.1, Nurmukhametov D.R.1, Kraft Y.V.1, Ismagilov Z.R.1
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隶属关系:
- Institute of Coal Chemistry and Material Science, Russian Academy of Sciences
- 期: 卷 43, 编号 3 (2024)
- 页面: 55-67
- 栏目: Combustion, explosion and shock waves
- URL: https://kld-journal.fedlab.ru/0207-401X/article/view/674973
- DOI: https://doi.org/10.31857/S0207401X24030067
- EDN: https://elibrary.ru/VGFYPJ
- ID: 674973
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详细
The ignition of pelletized samples of hard coals of the long-flame gas (DG), gas (G), fat (L), coke (K) grades with particle sizes ≤63 μm by laser pulses (λ = 532 nm, τi = 10 ns) was studied. When the critical radiation energy density Hcr(1), specific for each grade of coal, is exceeded, an optical breakdown occurs and a dense plasma with a continuous emission spectrum is formed. As the plasma expands and rarefies, the spectra show the emission of carbon ions CII, excited nitrogen atoms N, excited carbon molecules C2, and carbon monoxide CO. The plasma glow intensity peaks at the end of the laser pulse, and the glow relaxation time is ~1 μs. The plasma glow amplitude increases nonlinearly with increasing laser pulse energy density. At radiation energy density H ≥ Hcr(2), specific for each grade of coal, thermochemical reactions are initiated in the volume of microparticles and coal particles are ignited in a submillisecond time interval.
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作者简介
B. Aduev
Institute of Coal Chemistry and Material Science, Russian Academy of Sciences
编辑信件的主要联系方式.
Email: lesinko-iuxm@yandex.ru
俄罗斯联邦, Kemerovo
D. Nurmukhametov
Institute of Coal Chemistry and Material Science, Russian Academy of Sciences
Email: lesinko-iuxm@yandex.ru
俄罗斯联邦, Kemerovo
Ya. Kraft
Institute of Coal Chemistry and Material Science, Russian Academy of Sciences
Email: lesinko-iuxm@yandex.ru
俄罗斯联邦, Kemerovo
Z. Ismagilov
Institute of Coal Chemistry and Material Science, Russian Academy of Sciences
Email: lesinko-iuxm@yandex.ru
俄罗斯联邦, Kemerovo
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