燃烧室
燃烧
材料科学
热电偶
弧(几何)
机械
燃烧室
绝热火焰温度
热的
粒子图像测速
航程(航空)
预混火焰
粒子(生态学)
温度测量
流量(数学)
电弧
复合材料
等离子弧焊接
航空航天工程
核工程
燃油喷射
扩散火焰
等离子体
火焰速度
分级燃烧
领域(数学)
作者
Lei Zhang,Jinlu Yu,Zhankai Kang,Wen‐Hao Su,Guangxia Chen,Yang Yu
标识
DOI:10.1002/advs.202508724
摘要
A gliding arc plasma (GAP) combustion dome is used to construct a diagnostic platform for the swirl combustor of aeroengines. Thermocouple measurements, particle image velocimetry, and spontaneous emission imaging are employed to measure the outlet temperature field, combustor flow field, and combustion field information. The influence of GAP-assisted combustion on the outlet temperature profile of the combustor is then analyzed. The results demonstrate that gliding arc discharge allows the flame to reside closer to the combustion dome, shifting the combustion reaction zone forward. This combustion zone contains most of the active particles generated by gliding arc discharge, enabling a more complete combustion reaction and better heat release. The forward movement of the combustion reaction zone also provides sufficient space for flames to develop inside the combustor. The thermal and transport effects of gliding arc discharge enhance the aerodynamic effect inside the combustor, improve fuel atomization, broaden the flame development range inside the combustor, and make the combustion reaction more complete. Under various working conditions, the application of GAP-assisted combustion increases combustion efficiency by 10.3%, the outlet temperature of the combustor rises by 141.6°C, the outlet temperature distribution function decreases by 29.56%, and the hot-streak area ratio decreases by 72.6%.
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