FU Jin-jiang, YAN Chang-xiang, LIU Wei etc. Stiffness optimization of two-axis flexible supporting platform for fast steering mirror[J]. Editorial Office of Optics and Precision Engineering, 2015,23(12): 3378-3386
FU Jin-jiang, YAN Chang-xiang, LIU Wei etc. Stiffness optimization of two-axis flexible supporting platform for fast steering mirror[J]. Editorial Office of Optics and Precision Engineering, 2015,23(12): 3378-3386 DOI: 10.3788/OPE.20152312.3378.
Stiffness optimization of two-axis flexible supporting platform for fast steering mirror
Elliptic flexure hinges have both advantages of larger moving ranges and higher moving accuracy from right-angle flexure hinges and circular flexure hinges. Therefore
this paper designs a two axis flexible supporting platform with an elliptic flexure hinge used in a fast steering mirror system. For a fast response required by the system
the flexible supporting platform needs to maximize its natural frequency within the material's allowable stress. Firstly
the theoretical formulas of the maximum stiffness including the parameters of the allowable stress and rotating angle are deduced. The lumped parameter analysis method is adopted to obtain the relationship between the stiffness of flexible supporting platform and the stiffness of single flexure hinge. Then
the closed-form solution about the low order natural frequency of the two axis flexible support platform is deduced. A finite element model are created to perform experiments to assess those equations . The results compared by finite element analysis and theoretic calculation show that the relative error of the platform's natural frequency and maximum stress is within 5%. The relative errors of platform's stiffness got by the experiment
simulation and the theoretic calculation are 3.86% and 5.75%
respectively. These results indicate that the theoretical formula proposed in this paper is benefit for engineering structural design
it not only meets the requirements of engineering design
but also saves a lot of time .The most important thing is that it can help to achieve the optimal stiffness in theory.
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references
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