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Л.А. Бабкина, Д.В. Сорокин

8

Инженерный журнал: наука и инновации

# 4·2017

Parametric analysis of the spacecraft parabolic

antenna with a multivariate reinforcement scheme

© L.A. Babkina, D.V. Sorokin

Siberian State Aerospace University named after academician M.F. Reshetnev,

Krasnoyarsk, 660037, Russia

The problem of parametric geometric modeling is solved. The modal analysis of the

spacecraft parabolic antenna with a multivariate reinforcement scheme consisting of the

system of radial and annular ribs is made.

The modal analysis used for determining the

fundamental frequency of antenna oscillation as a criterion of structural rigidity was

performed in this article by the finite element method in the SolidWorks Simulation pack-

age. Simulation of the antenna is carried out by shell finite elements with a parabolic

approximation of the displacement field.

The parametric model of the antenna takes into

account the change in the reflector thickness, the number and thickness of the rib cross

sections, as well as the coordinates of the points of attachment of the primary structure to

the spacecraft.

The results of calculations of the antenna oscillation fundamental fre-

quency at different variants of a design parameter combination are presented. The design

solutions providing the required values of structure rigidity are revealed.

Keywords:

geometric modeling, parametric modeling, modal analysis, finite element method

REFERENCES

[1]

Soykasap O., Pellegrino S., Howard P., Notter M. Tape Spring Large

Deployable Antenna.

Proceedings of the 47th AIAA/ASME/ASCE/AHS/ASC

Conference on Structures, Structural Dynamics and Materials

. 1–4 May 2006,

Newport, Rhode Island, pp. 1–12. DOI:10.2514/6.2006-1601

[2]

Tan L.T., Soykasap O., Pellegrino S. Design & manufacture of stiffened spring-back

reflector demonstrator.

Proceedings of the 46th AIAA/ASME/ASCE/AHS/ASC

Conference on Structures, Structural Dynamics and Materials.

18–21 April 2005,

Austin, Texas, pp. 1–11.

[3]

Gryanik M.V., Loman V.I.

Razvertyvaemye zerkalnye antenny zontichnogo tipa

[Unfolding mirror antennas of umbrella type]. Moscow, Radio i svyaz Publ.,

1987, 72 p.

[4]

Banichuk N.V., Karpov I.I., Klimov D.M., Markeev A.P., Sokolov B.N.,

Sharanuk A.V.

Mekhanika bolshikh kosmicheskikh konstruktsiy

[Mechanics of

large space structures]. Moscow, Faktorial Publ., 1997, 302 p.

[5]

Imbriale W.A, Gao S., Boccia L., eds.

Space antenna handbook

. John Wiley &

Sons Ltd, 2012, 744 p.

[6]

Imbriale W.A., ed.

Spaceborne Antennas for Planetary Exploration

. John

Wiley & Sons Ltd, 2008, 570 p.

Babkina L.A.,

Cand. Sc. (Eng.), Associate Professor, Department of Computer Simula-

tion, Siberian State Aerospace University named after academician M.F. Reshetnev.

Author of 79 research and educational publications. Research interests: electrophysical

and electrochemical machining methods, geometric and finite element modeling.

e-mail:

L_babkina@mail.ru