常思源1, 肖尧1,2(
), 李广利1,2, 田中伟3, 张凯凯1,2, 崔凯1,2
更多阅读
收稿日期:2022-04-29
修回日期:2022-07-29
接受日期:2022-08-25
出版日期:2023-04-25
发布日期:2022-08-31
通讯作者:
肖尧
E-mail:xiaoyao@imech.ac.cn
基金资助:
Siyuan CHANG1, Yao XIAO1,2(
), Guangli LI1,2, Zhongwei TIAN3, Kaikai ZHANG1,2, Kai CUI1,2
更多阅读
Received:2022-04-29
Revised:2022-07-29
Accepted:2022-08-25
Online:2023-04-25
Published:2022-08-31
Contact:
Yao XIAO
E-mail:xiaoyao@imech.ac.cn
Supported by:摘要:
为研究翼反角变化对高压捕获翼构型高超声速气动特性的影响,基于一种双翼面、单支撑、翼身组合布局的高压捕获翼概念构型,以飞行马赫数6,飞行高度30 km为计算状态,捕获翼和机体三角翼上/下反角为设计变量,结合均匀试验设计方法、数值模拟方法和Kriging建模方法,探寻了升阻特性、纵向和横航向稳定性随翼反角的变化规律。 更多阅读结果表明,升力、阻力及升阻比随翼反角的变化规律基本一致,且对上反角变化更加敏感;小攻角时,翼面上反会明显降低升阻比,而下反会使升阻比先略微增大后缓慢减小;大攻角时,翼反角对升阻比的影响较小;纵向稳定性主要受三角翼反角的影响,三角翼上反时,纵向稳定性降低,下反时,纵向稳定性基本不变;翼面上/下反都会提高航向稳定性,但下反的效果更明显;翼面上反会提高横向稳定性,下反则降低,但大攻角飞行时,三角翼上反角过大可能会导致横向稳定性降低。
中图分类号:
常思源, 肖尧, 李广利, 田中伟, 张凯凯, 崔凯. 翼反角对高压捕获翼构型高超气动特性的影响[J]. 航空学报, 2023, 44(8): 127349.
Siyuan CHANG, Yao XIAO, Guangli LI, Zhongwei TIAN, Kaikai ZHANG, Kai CUI. Effect of wing dihedral and anhedral angles on hypersonic aerodynamic characteristics of high-pressure capturing wing configuration[J]. ACTA AERONAUTICAET ASTRONAUTICA SINICA, 2023, 44(8): 127349.
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