TY - JOUR
T1 - Configuration optimization design method for stabilized drag ballon spacecraft
T2 - Configuration Optimization for Stabilized Drag Balloon
AU - ZHANG, Ruonan
AU - YANG, Keying
AU - YUAN, Yurun
AU - JIAO, Ning
AU - ZHANG, Jingrui
N1 - Publisher Copyright:
© 2025 The Authors
PY - 2026/8
Y1 - 2026/8
N2 - In the deorbiting mission using drag balloons, there are several challenges, such as the diversity of deorbiting targets, complex disturbances in Low Earth Orbit (LEO), irregular windward areas, and the coupling of windward area with attitude and configuration. These issues make it difficult to quickly obtain drag balloon configurations that meet both deorbiting time and stability requirements, leading to repetitive iterations in engineering design and low computational efficiency. This presents obstacles to establishing deorbiting standards and achieving standardized, serialized, and scalable designs. This paper proposes an optimization design method for stable drag balloon configurations. The method enables the rapid determination of drag balloon configurations for any deorbiting target, ensuring compliance with the deorbiting time constraint while maintaining good shape and attitude stabilities. Key configuration parameters include radius, lobe number, and installation offset. Firstly, a surrogate-model-based predictor with bisection corrector is developed to efficiently estimate the required self-adaptive area. Secondly, a finite-element-based method is used to compute the projected area of arbitrarily shapes, optimizing radius and lobe number while satisfying area constraints, taking into account both shape stability and cost. Finally, a nonlinear analysis identifies feasible installation offset domains by evaluating the number and stability of attitude equilibrium points. This study provides a foundation for the configuration design and practical implementation of drag balloons.
AB - In the deorbiting mission using drag balloons, there are several challenges, such as the diversity of deorbiting targets, complex disturbances in Low Earth Orbit (LEO), irregular windward areas, and the coupling of windward area with attitude and configuration. These issues make it difficult to quickly obtain drag balloon configurations that meet both deorbiting time and stability requirements, leading to repetitive iterations in engineering design and low computational efficiency. This presents obstacles to establishing deorbiting standards and achieving standardized, serialized, and scalable designs. This paper proposes an optimization design method for stable drag balloon configurations. The method enables the rapid determination of drag balloon configurations for any deorbiting target, ensuring compliance with the deorbiting time constraint while maintaining good shape and attitude stabilities. Key configuration parameters include radius, lobe number, and installation offset. Firstly, a surrogate-model-based predictor with bisection corrector is developed to efficiently estimate the required self-adaptive area. Secondly, a finite-element-based method is used to compute the projected area of arbitrarily shapes, optimizing radius and lobe number while satisfying area constraints, taking into account both shape stability and cost. Finally, a nonlinear analysis identifies feasible installation offset domains by evaluating the number and stability of attitude equilibrium points. This study provides a foundation for the configuration design and practical implementation of drag balloons.
KW - Configuration design
KW - Deorbit
KW - Drag balloon
KW - Optimization
KW - Stability analysis
UR - https://www.scopus.com/pages/publications/105043938464
U2 - 10.1016/j.cja.2025.103994
DO - 10.1016/j.cja.2025.103994
M3 - Article
AN - SCOPUS:105043938464
SN - 1000-9361
VL - 39
JO - Chinese Journal of Aeronautics
JF - Chinese Journal of Aeronautics
IS - 8
M1 - 103994
ER -