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Zhao Jiang, Liu Cheng, Tian Qiang, Hu Haiyan. DYNAMIC ANALYSIS OF SPINNING DEPLOYMENT OF A SOLAR SAIL COMPOSED OF VISCOELASTIC MEMBRANES[J]. Chinese Journal of Theoretical and Applied Mechanics, 2013, 45(5): 746-754. DOI: 10.6052/0459-1879-13-002
Citation: Zhao Jiang, Liu Cheng, Tian Qiang, Hu Haiyan. DYNAMIC ANALYSIS OF SPINNING DEPLOYMENT OF A SOLAR SAIL COMPOSED OF VISCOELASTIC MEMBRANES[J]. Chinese Journal of Theoretical and Applied Mechanics, 2013, 45(5): 746-754. DOI: 10.6052/0459-1879-13-002

DYNAMIC ANALYSIS OF SPINNING DEPLOYMENT OF A SOLAR SAIL COMPOSED OF VISCOELASTIC MEMBRANES

Funds: The project was supported by the National Natural Science Foundation of China (51075032, 11002022).
  • Received Date: January 03, 2013
  • Revised Date: March 09, 2013
  • In recent years, increasing attention has been paid to the spinning deployment technology of solar sails for spacecraft. Such a solar sail can be regarded as a rigid-flexible multibody system mainly composed of a central rotating hub, a number of flexible thin tethers, sail membranes and tip masses. In order to model the sail membrane, a viscoelastic finite element of thin plate is proposed via the absolute nodal coordinate formulation (ANCF) and the efficacy of the finite element is testified first. Then, a simplified spinning deployable "IKAROS" model is established by using the absolute-coordinate-based (ACB) method in combination with ANCF and the natural coordinate formulation (NCF). Afterwards, a large set of stiff equations of system dynamics is solved by using the Generalized-α method. Therefore, the deployment dynamics of the system is well analyzed and the influence of the viscoelastic damping in the membranes on the deployment dynamics is discussed.
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