TY - JOUR
T1 - Uncertainty quantification in the deployment of tensegrity
AU - Zou, Haoran
AU - Quarta, Alessandro A.
AU - Wu, Lei
AU - Boni, Luisa
AU - Li, Wenhao
AU - Bai, Songlin
AU - Deng, Zichen
N1 - Publisher Copyright:
© 2026 COSPAR. Published by Elsevier B.V. All rights are reserved, including those for text and data mining, AI training, and similar technologies.
PY - 2026
Y1 - 2026
N2 - This study investigates input parameter uncertainties in the deployment of a three-bar tensegrity and proposes an integrated analysis framework that combines uncertainty quantification, sensitivity assessment, and infinitesimal mechanism–based path optimization. Leveraging Latin hypercube sampling in conjunction with an accurate dynamic model, four key parameters, i.e., pretension, damping coefficient, deployment time, and initial angle, are examined for their influence on deployment performance. The method is evaluated through a simulation-based approach, and in this context, the numerical results indicate that the initial angle is the dominant factor influencing both energy consumption and path-tracking accuracy. Compared with the nominal design value, its interaction with deployment time can cause energy consumption variations of up to approximately 50% and path error deviations of about (Formula presented). The damping coefficient is the primary driver of energy consumption, while deployment time exerts a secondary influence on path error. Furthermore, several statistical and sensitivity analysis methods are used to reveal the effects of the input variables and their interactions. The results provide quantitative guidance for parameter optimization in on-orbit deployment strategies and robust control.
AB - This study investigates input parameter uncertainties in the deployment of a three-bar tensegrity and proposes an integrated analysis framework that combines uncertainty quantification, sensitivity assessment, and infinitesimal mechanism–based path optimization. Leveraging Latin hypercube sampling in conjunction with an accurate dynamic model, four key parameters, i.e., pretension, damping coefficient, deployment time, and initial angle, are examined for their influence on deployment performance. The method is evaluated through a simulation-based approach, and in this context, the numerical results indicate that the initial angle is the dominant factor influencing both energy consumption and path-tracking accuracy. Compared with the nominal design value, its interaction with deployment time can cause energy consumption variations of up to approximately 50% and path error deviations of about (Formula presented). The damping coefficient is the primary driver of energy consumption, while deployment time exerts a secondary influence on path error. Furthermore, several statistical and sensitivity analysis methods are used to reveal the effects of the input variables and their interactions. The results provide quantitative guidance for parameter optimization in on-orbit deployment strategies and robust control.
KW - Global sensitivity analysis
KW - Latin hypercube sampling
KW - On-orbit deployment
KW - Tensegrity
KW - Uncertainty quantification
UR - https://www.scopus.com/pages/publications/105042272278
U2 - 10.1016/j.asr.2026.06.005
DO - 10.1016/j.asr.2026.06.005
M3 - 文章
AN - SCOPUS:105042272278
SN - 0273-1177
JO - Advances in Space Research
JF - Advances in Space Research
ER -