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Investigation on combustor performance of a ramp-based solid rocket scramjet with ethylene addition

  • Jiebo Zhang
  • , Suyi Dou
  • , Xu Wang
  • , Mengxiong Li
  • , Qingchun Yang*
  • , Xu Xu
  • *此作品的通讯作者
  • Beihang University
  • National Key Laboratory of Aerospace Liquid Propulsion

科研成果: 期刊稿件文章同行评审

摘要

High combustion efficiency and low total pressure loss are essential for improving the performance of solid rocket scramjets. This study conducted direct-connect experiments to investigate the combustor performance of a ramp-based solid rocket scramjet with ethylene addition, simulating a Mach 6 flight condition with an equivalence ratio of 0.56. Ramps were installed near the exit of the combustor, expected to function as a throat and control the shock train intensity in the isolator. A boron-containing, oxygen-poor gas generator was used to generate a fuel-rich mixture, which was injected into the combustor for further combustion with the inflow air. Wall pressure along the combustor was measured, and other flow parameters were calculated using a one-dimensional analysis method. The experimental results indicate that subsonic combustion occurs within the combustor, and the ramps are confirmed as the throat. Raising the ramp height intensifies the blockage, thereby enhancing the shock train intensity. Ethylene addition boosts the total heat release, further enhancing the shock train intensity. The enhanced shock train increases the temperature and pressure, thereby promoting combustion. Furthermore, the enhanced shock train decreases Mach number, resulting in a reduction in total pressure loss. Therefore, raising the ramp height and adding ethylene both improve thrust and specific impulse. These findings offer novel insights into the design of solid rocket scramjets with high combustion efficiency and low total pressure loss.

源语言英语
页(从-至)131-140
页数10
期刊Acta Astronautica
234
DOI
出版状态已出版 - 9月 2025

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