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火箭技术

一种三通道进气先进旋涡燃烧室性能数值分析

  • 俞骏 ,
  • 周韦韦 ,
  • 刘景源
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  • 南昌航空大学飞行器工程学院,南昌 330063

俞骏(1990-),男,江西宜春人,硕士研究生,研究方向:航空宇航推进理论与工程。

收稿日期: 2016-09-05

  网络出版日期: 2025-05-28

基金资助

国家自然科学基金(11102079;11562012)

Numerical Analysis of the Performance of a Three Channel Intake Advanced Swirl Combustor

  • YU Jun ,
  • ZHOU Weiwei ,
  • LIU Jingyuan
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  • Aircraft Engineering College, Nanchang Hangkong University, Nanchang 330063, China

Received date: 2016-09-05

  Online published: 2025-05-28

摘要

为提高燃烧室性能,提出了一种三通道进气先进旋涡燃烧室(AVC),并对不同进气结构参数、后钝体高度H₂、腔体宽度L等的燃烧室性能进行了模拟。结果表明,在L/H₁=0.4~0.5、H₂/H₁=0.4~0.7及L/H₁=0.6~0.7、H₂/H₁=0.4~0.5的范围内(其中H₁为前钝体高度),AVC能形成稳定的双涡对结构。在研究范围内,燃烧室的总压损失系数及燃烧效率随H₂/H₁增大呈现先减小后增大的趋势;三通道进气AVC较双通道进气AVC,燃烧效率增加了11.59%,总压损失系数仅增加了0.12%。

本文引用格式

俞骏 , 周韦韦 , 刘景源 . 一种三通道进气先进旋涡燃烧室性能数值分析[J]. 弹箭与制导学报, 2017 , 37(4) : 92 -97 . DOI: 10.15892/j.cnki.djzdxb.2017.04.022

Abstract

A three channel intake advanced swirl combustor(AVC) was proposed to improve the performance of the combustor, and the performances of the combustor with different intake structure parameters, different heights of rear bluff H₂ and different cavity width L were simulated. The results showed that the AVC could form a stable dual-vortex pair structure in the range of L/H₁ = 0. 4 ~ 0.5, H₂/H₁ = 0.4 ~0.7 and L/H₁ = 0.6~0.7, H₂/H₁ = 0.4~0.5(where H₁ was defined as the height of front bluff), and AVC could form a stable dual-vortex pair structure. In the research area, the total pressure loss coefficient and combustion efficiency of combustor showed a tendency to decrease first and then increase with the increase of H2/H₁. Compared with double channel intake AVC, the combustion efficiency of the three channel intake AVC increased by 11.59%, and the total pressure loss coefficient increased by only 0. 12%.

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