混合火箭发动机的数值研究

Q3 Earth and Planetary Sciences
C. Ommounica, Sachin Srivastava, Subham Haldar
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引用次数: 0

摘要

混合火箭发动机由于其与传统化学推进系统相关的易用性、安全性和可负担性而引起了极大的关注。它们提供按需调节油门和推力的优势。混合动力火箭发动机的性能取决于回归率,即固体燃料颗粒向可燃气体的转变。与固体和液体发动机不同,混合动力发动机随着时间的推移会经历不同的氧化剂与燃料(O/F)比率。氧化剂流量和燃油口直径的变化等因素会导致这种波动,从而导致燃烧不完全和效率降低。为了提高混合动力火箭发动机的性能,研究人员正在探索各种方法。一种方法是增加氧化剂在燃烧燃料表面的流动速度。本文采用解析和数值方法确定了混合动力火箭发动机单孔燃料颗粒的有效氧化剂/燃料比。最终,研究的目标是优化性能,使这种安全高效的推进技术成熟。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical study of the hybrid rocket engine

Hybrid rocket engines have gathered significant attention due to their ease of use, safety, and affordability associated with traditional chemical propulsion systems. They offer the advantage of on-demand throttle and thrust adjustments. The performance of hybrid rocket engines depends on the regression rate, which is the transition of the solid fuel grain to flammable gas. Unlike solid and liquid engines, hybrids experience varying oxidizer-to-fuel (O/F) ratios over time. Factors such as changes in oxidizer flow and fuel port diameter contribute to this fluctuation, leading to incomplete combustion and reduced efficiency. To enhance hybrid rocket engine performance, ongoing research explores various methods. One approach is increasing the oxidizer flow velocity over the burning fuel surface. This paper employs analytical and numerical techniques to determine the effective oxidizer/fuel ratio for a single-port fuel grain in a hybrid rocket engine. Ultimately, the research aims to optimize performance, allowing this secure and efficient propulsion technology to mature.

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来源期刊
Aerospace Systems
Aerospace Systems Social Sciences-Social Sciences (miscellaneous)
CiteScore
1.80
自引率
0.00%
发文量
53
期刊介绍: Aerospace Systems provides an international, peer-reviewed forum which focuses on system-level research and development regarding aeronautics and astronautics. The journal emphasizes the unique role and increasing importance of informatics on aerospace. It fills a gap in current publishing coverage from outer space vehicles to atmospheric vehicles by highlighting interdisciplinary science, technology and engineering. Potential topics include, but are not limited to: Trans-space vehicle systems design and integration Air vehicle systems Space vehicle systems Near-space vehicle systems Aerospace robotics and unmanned system Communication, navigation and surveillance Aerodynamics and aircraft design Dynamics and control Aerospace propulsion Avionics system Opto-electronic system Air traffic management Earth observation Deep space exploration Bionic micro-aircraft/spacecraft Intelligent sensing and Information fusion
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