Solar Sail Orbit Raising with Electro-Optically Controlled Diffractive Film
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Published:2023-06-13
Issue:12
Volume:13
Page:7078
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ISSN:2076-3417
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Container-title:Applied Sciences
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language:en
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Short-container-title:Applied Sciences
Author:
Quarta Alessandro A.1ORCID, Mengali Giovanni1ORCID
Affiliation:
1. Department of Civil and Industrial Engineering, University of Pisa, I-56122 Pisa, Italy
Abstract
The aim of this paper is to analyze the transfer performance of a spacecraft whose primary propulsion system is a diffractive solar sail with active, switchable panels. The spacecraft uses a propellantless thruster that converts the solar radiation pressure into propulsive acceleration by taking advantage of the diffractive property of an electro-optically controlled (binary) metamaterial. The proposed analysis considers a heliocentric mission scenario where the spacecraft is required to perform a two-dimensional transfer between two concentric and coplanar circular orbits. The sail attitude is assumed to be Sun-facing, that is, with its sail nominal plane perpendicular to the incoming sunlight. This is possible since, unlike a more conventional solar sail concept that uses metalized highly reflective thin films to reflect the photons, a diffractive sail is theoretically able to generate a component of the thrust vector along the sail nominal plane also in a Sun-facing configuration. The electro-optically controlled sail film is used to change the in-plane component of the thrust vector to accomplish the transfer by minimizing the total flight time without changing the sail attitude with respect to an orbital reference frame. This work extends the mathematical model recently proposed by the authors by including the potential offered by an active control of the diffractive sail film. The paper also thoroughly analyzes the diffractive sail-based spacecraft performance in a set of classical circle-to-circle heliocentric trajectories that model transfers from Earth to Mars, Venus and Jupiter.
Funder
University of Pisa, Progetti di Ricerca di Ateneo
Subject
Fluid Flow and Transfer Processes,Computer Science Applications,Process Chemistry and Technology,General Engineering,Instrumentation,General Materials Science
Reference66 articles.
1. Sawada, H., Mori, O., Okuizumi, N., Shirasawa, Y., Miyazaki, Y., Natori, M., Matunaga, S., Furuya, H., and Sakamoto, H. (2011, January 4–7). Mission report on the solar power sail deployment demonstration of IKAROS. Proceedings of the 52nd AIAA/ASME/ASCE/AHS/ASC Structures, Structural Dynamics and Materials Conference, Denver, CO, USA. 2. Achievement of IKAROS—Japanese deep space solar sail demonstration mission;Tsuda;Acta Astronaut.,2013 3. Mori, O., Shirasawa, Y., Mimasu, Y., Tsuda, Y., Sawada, H., Saiki, T., Yamamoto, T., Yonekura, K., Hoshino, H., and Kawaguchi, J. (2014). Advances in Solar Sailing, Springer. 4. Montgomery, E., Heaton, A., and Garbe, G. (2003, January 14–17). Places only solar sails can go. Proceedings of the AIAA International Air and Space Symposium and Exposition: The Next 100 Years, Dayton, OH, USA. 5. Development priorities for in-space propulsion technologies;Johnson;Acta Astronaut.,2013
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