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Experimental and numerical study of flow and ignition and lean blowout characteristics of jet-cooled wall flameholder in a dual-mode combustor

Chen, Yuqian LU ; Fan, Yuxin ; Xu, Leilei LU ; Shan, Xu ; Han, Qixiang and Bai, Xue Song LU (2022) In Aerospace Science and Technology 122.
Abstract

The wall flameholder is one of the credible alternatives to realize pilot ignition in augmented/ramjet combustors. To overcome the ablation for a long-term operation, two types of jet cooling, external-inhaled air and pressure-driven jet cooling, are proposed for the wall flameholder. In this work, the flow and combustion process in a laboratory scale rig is studied for different cooling schemes and cooling conditions using experimental and numerical methods. Flow analysis in pressure-driven jet cooling scheme shows that the flow field of flameholder is influenced significantly by the cooling hole angle on the oblique plate α and on the rear plate β. In particular, the cooling jet angle combinations (α=30o, β=30o)... (More)

The wall flameholder is one of the credible alternatives to realize pilot ignition in augmented/ramjet combustors. To overcome the ablation for a long-term operation, two types of jet cooling, external-inhaled air and pressure-driven jet cooling, are proposed for the wall flameholder. In this work, the flow and combustion process in a laboratory scale rig is studied for different cooling schemes and cooling conditions using experimental and numerical methods. Flow analysis in pressure-driven jet cooling scheme shows that the flow field of flameholder is influenced significantly by the cooling hole angle on the oblique plate α and on the rear plate β. In particular, the cooling jet angle combinations (α=30o, β=30o) and (α=90o, β=150o) are the two schemes with the most different characteristics. To investigate the effects of jet cooling type and cooling jet angle on the flow, ignition, and lean blowout (LBO) characteristics, the two distinctively different angle combinations are applied to form two kinds of jet cooling schemes mentioned above. Results suggest that the jet cooling type has less impact on the flow field but more influence on the flow loss than the cooling jet angle. The ignition performance of cooling schemes with α=30o and β=30o is better than that of those with α=90o and β=150o, but it has a more significant flow loss. The LBO limits of external-inhaled air cooling are lower than that of pressure-driven jet cooling. Moreover, the ignition and LBO limits decrease gradually with the increased mainstream temperature and they are only slightly affected by the mainstream velocity. Notably, the pressure-driven jet cooling scheme can slightly reduce the flow loss but it leads to a deteriorated ignition and LBO performance. The external-inhaled air cooling scheme with α=30o and β=30o has an excellent ignition and LBO performance, and the ignition and LBO limits increase with the increasing cooling air flow rate and the decreasing cooling air temperature.

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author
; ; ; ; and
organization
publishing date
type
Contribution to journal
publication status
published
subject
keywords
Flow characteristics, Ignition limit, Jet cooling, Lean blowout limit, Turbine-based combined cycle, Wall flameholder
in
Aerospace Science and Technology
volume
122
article number
107403
publisher
Elsevier Masson SAS
external identifiers
  • scopus:85124490848
ISSN
1270-9638
DOI
10.1016/j.ast.2022.107403
language
English
LU publication?
yes
id
6b455da5-2048-46dc-803a-9c0ed01fdcf6
date added to LUP
2022-04-12 15:07:02
date last changed
2022-04-20 05:40:51
@article{6b455da5-2048-46dc-803a-9c0ed01fdcf6,
  abstract     = {{<p>The wall flameholder is one of the credible alternatives to realize pilot ignition in augmented/ramjet combustors. To overcome the ablation for a long-term operation, two types of jet cooling, external-inhaled air and pressure-driven jet cooling, are proposed for the wall flameholder. In this work, the flow and combustion process in a laboratory scale rig is studied for different cooling schemes and cooling conditions using experimental and numerical methods. Flow analysis in pressure-driven jet cooling scheme shows that the flow field of flameholder is influenced significantly by the cooling hole angle on the oblique plate α and on the rear plate β. In particular, the cooling jet angle combinations (α=30<sup>o</sup>, β=30<sup>o</sup>) and (α=90<sup>o</sup>, β=150<sup>o</sup>) are the two schemes with the most different characteristics. To investigate the effects of jet cooling type and cooling jet angle on the flow, ignition, and lean blowout (LBO) characteristics, the two distinctively different angle combinations are applied to form two kinds of jet cooling schemes mentioned above. Results suggest that the jet cooling type has less impact on the flow field but more influence on the flow loss than the cooling jet angle. The ignition performance of cooling schemes with α=30<sup>o</sup> and β=30<sup>o</sup> is better than that of those with α=90<sup>o</sup> and β=150<sup>o</sup>, but it has a more significant flow loss. The LBO limits of external-inhaled air cooling are lower than that of pressure-driven jet cooling. Moreover, the ignition and LBO limits decrease gradually with the increased mainstream temperature and they are only slightly affected by the mainstream velocity. Notably, the pressure-driven jet cooling scheme can slightly reduce the flow loss but it leads to a deteriorated ignition and LBO performance. The external-inhaled air cooling scheme with α=30<sup>o</sup> and β=30<sup>o</sup> has an excellent ignition and LBO performance, and the ignition and LBO limits increase with the increasing cooling air flow rate and the decreasing cooling air temperature.</p>}},
  author       = {{Chen, Yuqian and Fan, Yuxin and Xu, Leilei and Shan, Xu and Han, Qixiang and Bai, Xue Song}},
  issn         = {{1270-9638}},
  keywords     = {{Flow characteristics; Ignition limit; Jet cooling; Lean blowout limit; Turbine-based combined cycle; Wall flameholder}},
  language     = {{eng}},
  publisher    = {{Elsevier Masson SAS}},
  series       = {{Aerospace Science and Technology}},
  title        = {{Experimental and numerical study of flow and ignition and lean blowout characteristics of jet-cooled wall flameholder in a dual-mode combustor}},
  url          = {{http://dx.doi.org/10.1016/j.ast.2022.107403}},
  doi          = {{10.1016/j.ast.2022.107403}},
  volume       = {{122}},
  year         = {{2022}},
}