TY - JOUR
T1 - Numerical Simulation and Analysis of the Effect of Anti-Vortex Ribs on Axial Force in Turbopump Balance Pistons
AU - Yang, Tieheng
AU - Xu, Kaifu
AU - Jin, Lu
AU - Zheng, Xu
AU - Sun, Zhongguo
AU - Xi, Guang
N1 - Publisher Copyright:
© 2025, Xi'an Jiaotong University. All rights reserved.
PY - 2025
Y1 - 2025
N2 - Through three-dimensional steady-state numerical simulations and orthogonal experimental design, this study systematically investigates the influence of anti-swirl ribs with varying structural parameters on flow characteristics and axial force within turbopump balance pistons. The flow domain of the turbopump balance piston in a liquid rocket engine is selected as the research object for 3D steady-state numerical simulation, revealing the impact of anti-swirl ribs on internal flow patterns. An orthogonal experimental scheme is designed to evaluate the differential effects of rib width, height, and quantity on axial force. The introduction of anti-swirl ribs significantly alters the internal flow characteristics of the turbopump balance piston. After implementing anti-swirl ribs, the internal flow patterns become more complex, with increased vortex generation in the rotor-stator disk gaps that enhances energy dissipation. This subsequently modifies the internal pressure distribution, leading to notable changes in axial force-achieving up to a 14. 3% reduction in axial force within the leakage channel. Among the selected structural parameters of anti-swirl ribs, their influence on axial force, ranked from highest to lowest, is as follows: width, height, and quantity. The first two parameters show ranges of 4. 6 times and 3. 5 times the corresponding results for the quantity of anti-vortex ribs, respectively. Through optimized anti-swirl rib parameter design, this study improves the operational characteristics of balance pistons, thereby enhancing turbopump stability. The findings provide valuable references for performance optimization of liquid rocket engine turbopumps.
AB - Through three-dimensional steady-state numerical simulations and orthogonal experimental design, this study systematically investigates the influence of anti-swirl ribs with varying structural parameters on flow characteristics and axial force within turbopump balance pistons. The flow domain of the turbopump balance piston in a liquid rocket engine is selected as the research object for 3D steady-state numerical simulation, revealing the impact of anti-swirl ribs on internal flow patterns. An orthogonal experimental scheme is designed to evaluate the differential effects of rib width, height, and quantity on axial force. The introduction of anti-swirl ribs significantly alters the internal flow characteristics of the turbopump balance piston. After implementing anti-swirl ribs, the internal flow patterns become more complex, with increased vortex generation in the rotor-stator disk gaps that enhances energy dissipation. This subsequently modifies the internal pressure distribution, leading to notable changes in axial force-achieving up to a 14. 3% reduction in axial force within the leakage channel. Among the selected structural parameters of anti-swirl ribs, their influence on axial force, ranked from highest to lowest, is as follows: width, height, and quantity. The first two parameters show ranges of 4. 6 times and 3. 5 times the corresponding results for the quantity of anti-vortex ribs, respectively. Through optimized anti-swirl rib parameter design, this study improves the operational characteristics of balance pistons, thereby enhancing turbopump stability. The findings provide valuable references for performance optimization of liquid rocket engine turbopumps.
KW - axial forces
KW - balance pistons
KW - swirl brake
KW - turbopumps
UR - https://www.scopus.com/pages/publications/105011080282
U2 - 10.7652/xjtuxb202507005
DO - 10.7652/xjtuxb202507005
M3 - 文章
AN - SCOPUS:105011080282
SN - 0253-987X
VL - 59
SP - 46
EP - 55
JO - Hsi-An Chiao Tung Ta Hsueh/Journal of Xi'an Jiaotong University
JF - Hsi-An Chiao Tung Ta Hsueh/Journal of Xi'an Jiaotong University
IS - 7
ER -