收稿日期:2026-01-09
修回日期:2026-02-05
接受日期:2026-03-09
出版日期:2026-03-30
发布日期:2026-03-23
通讯作者:
李世斌
E-mail:lishibin104@163.com
基金资助:
Junheng LUO, Qingyang GUO, Lin WANG, Bing LIU, Shibin LI(
)
Received:2026-01-09
Revised:2026-02-05
Accepted:2026-03-09
Online:2026-03-30
Published:2026-03-23
Contact:
Shibin LI
E-mail:lishibin104@163.com
Supported by:摘要:
高超声速流动中,激波/边界层干扰(SWBLI)引发的多尺度流动耦合效应会显著加剧飞行器热载荷管理难度。为此,针对空气舵提出一种横-逆双射流耦合主动控制方案,并采用数值模拟揭示其在复杂来流工况下对流场SWBLI及气动热环境的影响。结果表明,横-逆向双射流方案通过空间耦合布局可实现优于单射流的全局降热;在舵偏11°工况下,当横向射流布置于较远上游且逆向射流位于高位时,可构建大尺度分离区以隔绝高温主流,使前缘与平板热流峰值分别控制在3 200 kW·m-2与300 kW·m-2以下;在11°攻角下,所有双射流布局均能显著降低缝隙热流密度至300 kW·m-2以下,但前缘热流对射流位置敏感,需避免逆向射流超出横向射流低压尾迹区,以防诱发剧烈再附导致热流剧增。
中图分类号:
骆俊衡, 郭庆阳, 王林, 刘冰, 李世斌. 高速空气舵横-逆向双射流耦合流动控制及降热特性[J]. 航空学报, 2026, 47(13): 533348.
Junheng LUO, Qingyang GUO, Lin WANG, Bing LIU, Shibin LI. Coupled flow control and heat reduction characteristics of transverse-opposing dual-jets for high-speed air rudder[J]. Acta Aeronautica et Astronautica Sinica, 2026, 47(13): 533348.
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