TY - JOUR
T1 - Experimental investigation on the effects of chamber characteristic length on the rotating detonation performance
AU - Zhu, Yiyuan
AU - Wang, Ke
AU - Fan, Wei
AU - Huang, Kenan
N1 - Publisher Copyright:
© 2026 Elsevier Masson SAS.
PY - 2026/11
Y1 - 2026/11
N2 - To elucidate the coupled effects of the combustion chamber configuration and nozzle on rotating detonation propulsive performance, an experimental investigation was conducted under mass flow rates ranging from around 80 to 250 g/s using ethylene and 50% oxygen-enriched air. Five annular combustors with an increasing chamber characteristic length L * (from 439 mm to 563 mm), the ratio of chamber volume to the nozzle throat area, were tested with a fixed nozzle geometry. Five distinct propagation modes were identified, and the wave propagation mode evolutions with L * under varying the nominal inlet mass flow fluxes were categorized into stable, transition, and unstable regions. The results showed that the stable single-wave operational range progressively narrowed as L * increased. The chamber pressure and thrust exhibited a non-linear increase with the mass flow rate, while the characteristic velocity c * consistently decreased, indicating a reduced combustion efficiency at higher flow rates due to the shortened chemical reaction time. For L * increasing from 439 mm to 468 mm, a moderate enhancement in thrust and specific impulse is observed within the flow regime of 140–200 g/s. However, when L * was further increased to 563 mm, the propulsive performance declined over the whole range of flow rates investigated, indicating that L *=468 mm represents a critical dimension.
AB - To elucidate the coupled effects of the combustion chamber configuration and nozzle on rotating detonation propulsive performance, an experimental investigation was conducted under mass flow rates ranging from around 80 to 250 g/s using ethylene and 50% oxygen-enriched air. Five annular combustors with an increasing chamber characteristic length L * (from 439 mm to 563 mm), the ratio of chamber volume to the nozzle throat area, were tested with a fixed nozzle geometry. Five distinct propagation modes were identified, and the wave propagation mode evolutions with L * under varying the nominal inlet mass flow fluxes were categorized into stable, transition, and unstable regions. The results showed that the stable single-wave operational range progressively narrowed as L * increased. The chamber pressure and thrust exhibited a non-linear increase with the mass flow rate, while the characteristic velocity c * consistently decreased, indicating a reduced combustion efficiency at higher flow rates due to the shortened chemical reaction time. For L * increasing from 439 mm to 468 mm, a moderate enhancement in thrust and specific impulse is observed within the flow regime of 140–200 g/s. However, when L * was further increased to 563 mm, the propulsive performance declined over the whole range of flow rates investigated, indicating that L *=468 mm represents a critical dimension.
KW - Chamber configuration
KW - Characteristic length
KW - Characteristic velocity
KW - Propulsive performance
KW - Rotating detonation
UR - https://www.scopus.com/pages/publications/105045435456
U2 - 10.1016/j.ast.2026.113267
DO - 10.1016/j.ast.2026.113267
M3 - 文章
AN - SCOPUS:105045435456
SN - 1270-9638
VL - 178
JO - Aerospace Science and Technology
JF - Aerospace Science and Technology
M1 - 113267
ER -