TY - JOUR
T1 - Static Equilibrium Characteristics of Full-Flow Staged Combustion Cycle Engine Under Different Propellants
AU - He, Haodong
AU - Yu, Nanjia
AU - Di, Sihan
AU - Cai, Guobiao
AU - Zhou, Chuang
AU - Zheng, Lihao
N1 - Publisher Copyright:
© 2024 Haodong He et al.
PY - 2024
Y1 - 2024
N2 - The full-flow staged combustion cycle (FFSC) engine is a promising liquid rocket propulsion system owing to its capacity for high specific impulse. The present study introduces an equilibrium model of the FFSC engine, utilizing the Raptor engine as a reference point and employing the discrete Newton iteration method to resolve the equilibrium equations in a fixed-point format. Under different propellants (LOX-LH2, LOX-LCH4, and LOX-kerosene), the static equilibrium characteristics of the FFSC engine were analyzed, and the following conclusions were drawn. The FFSC engine exhibited similar equilibrium results on the oxidizer side, with differences concentrated on the fuel side. Significant differences were identified between the three propellants in the regulation range of the FFSC engine. The regulation range of LOX-LH2 was wider than that of LOX-LCH4 primarily because of the variance in the molecular weight of the fuel-rich gas. Conversely, LOX-kerosene exhibited the narrowest regulatory range, which was attributed to the extremely low value of the oxidizer excess coefficient. The temperature management of preburners relies on regulating the oxidizer excess coefficient, necessitating adjustments to the valve components (main fuel valve (MFV), oxidizer preburner fuel valve (OPFV), and fuel preburner oxidizer valve). The differences among the three propellants were mainly concentrated on the MFV and OPFV.
AB - The full-flow staged combustion cycle (FFSC) engine is a promising liquid rocket propulsion system owing to its capacity for high specific impulse. The present study introduces an equilibrium model of the FFSC engine, utilizing the Raptor engine as a reference point and employing the discrete Newton iteration method to resolve the equilibrium equations in a fixed-point format. Under different propellants (LOX-LH2, LOX-LCH4, and LOX-kerosene), the static equilibrium characteristics of the FFSC engine were analyzed, and the following conclusions were drawn. The FFSC engine exhibited similar equilibrium results on the oxidizer side, with differences concentrated on the fuel side. Significant differences were identified between the three propellants in the regulation range of the FFSC engine. The regulation range of LOX-LH2 was wider than that of LOX-LCH4 primarily because of the variance in the molecular weight of the fuel-rich gas. Conversely, LOX-kerosene exhibited the narrowest regulatory range, which was attributed to the extremely low value of the oxidizer excess coefficient. The temperature management of preburners relies on regulating the oxidizer excess coefficient, necessitating adjustments to the valve components (main fuel valve (MFV), oxidizer preburner fuel valve (OPFV), and fuel preburner oxidizer valve). The differences among the three propellants were mainly concentrated on the MFV and OPFV.
KW - cryogenic liquid propellants
KW - full-flow staged combustion
KW - static equilibrium characteristics
KW - variable-operating conditions
UR - https://www.scopus.com/pages/publications/85205286645
U2 - 10.1155/2024/7114250
DO - 10.1155/2024/7114250
M3 - 文章
AN - SCOPUS:85205286645
SN - 1687-5966
VL - 2024
JO - International Journal of Aerospace Engineering
JF - International Journal of Aerospace Engineering
M1 - 7114250
ER -