TY - JOUR
T1 - Research progress in rotating detonation propulsion technology
AU - Qin, Xu
AU - Yang, Qingchun
AU - Wang, Hongxin
AU - Xu, Xu
AU - Haidn, Oskar
N1 - Publisher Copyright:
© 2025 The Authors
PY - 2025/11
Y1 - 2025/11
N2 - Detonation, as a type of self-pressurizing combustion, offers significant advantages in thermodynamic cycle efficiency compared to traditional deflagration. This enhanced efficiency can substantially improve the propulsive performance of engines and is expected to drive a leapfrog development in aerospace propulsion technologies. The rotating detonation engine (RDE) has emerged as a significant developmental direction for future aerospace propulsion technologies, owing to the advantages of self-pressurization, single ignition requirement, and simple structure. This paper initially provides a brief introduction to the fundamental knowledge of rotating detonation, including common theoretical models, the triple-point structure and the fundamental structure of the flow field. Subsequently, the study provides a comprehensive review of the progress in research on rotating detonation propulsion technologies. The key technologies and applications of RDEs are highlighted, covering aspects such as combustor configurations, fuel injection, and ignition. The impact of non-ideal heat release on RDEs is also analyzed. Finally, the paper summarizes the existing research achievements and offers prospects for the future development of RDEs.
AB - Detonation, as a type of self-pressurizing combustion, offers significant advantages in thermodynamic cycle efficiency compared to traditional deflagration. This enhanced efficiency can substantially improve the propulsive performance of engines and is expected to drive a leapfrog development in aerospace propulsion technologies. The rotating detonation engine (RDE) has emerged as a significant developmental direction for future aerospace propulsion technologies, owing to the advantages of self-pressurization, single ignition requirement, and simple structure. This paper initially provides a brief introduction to the fundamental knowledge of rotating detonation, including common theoretical models, the triple-point structure and the fundamental structure of the flow field. Subsequently, the study provides a comprehensive review of the progress in research on rotating detonation propulsion technologies. The key technologies and applications of RDEs are highlighted, covering aspects such as combustor configurations, fuel injection, and ignition. The impact of non-ideal heat release on RDEs is also analyzed. Finally, the paper summarizes the existing research achievements and offers prospects for the future development of RDEs.
KW - Detonation wave
KW - Nonideal heat release
KW - Pressure gain combustion
KW - Rotating detonation engine
UR - https://www.scopus.com/pages/publications/105010676959
U2 - 10.1016/j.actaastro.2025.06.064
DO - 10.1016/j.actaastro.2025.06.064
M3 - 文献综述
AN - SCOPUS:105010676959
SN - 0094-5765
VL - 236
SP - 522
EP - 546
JO - Acta Astronautica
JF - Acta Astronautica
ER -