Structure Design Method of Multi-Ring Carbon Fiber Composite Flywheel

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Abstract:

A design method of carbon fiber composite flywheel, on the basis of the flywheel application background, is introduced in this paper. This method based on the stress distribution of multi-ring interference fit flywheel can quickly design the number of rings and the interference, on the premise that the storage requirement of flywheel energy storage system is met. Compared with the existing design method that is aimed at maximizing energy density and storage, the proposed method in this paper, simpler and faster, lays more emphasis on engineering applications.

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250-256

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October 2013

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© 2014 Trans Tech Publications Ltd. All Rights Reserved

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[1] Jerome T. Tzeng, Paul Moy, Composite energy storage flywheel design for fatigue crack resistance, Electromagnetic Launch Technology, 2008, 14: 1-6.

DOI: 10.1109/elt.2008.23

Google Scholar

[2] Mark M. Flynn, Energy recovery and emission cutting in a mobile gantry crane, IEEE Industry Applications Magazine, 2012, 8.

Google Scholar

[3] R. Okoua, A.B. Sebitosi, P. Pillay, Flywheel rotor manufacture for rural energy storage in sub-Saharan Africa, Energy 2011(36): 6138-6145.

DOI: 10.1016/j.energy.2011.07.051

Google Scholar

[4] Sung K. Ha, Seong J. Kim, Design optimization and fabrication of a hybrid composite flywheel rotor, Composite Structures, 2012(94): 3290-3299.

DOI: 10.1016/j.compstruct.2012.04.015

Google Scholar

[5] Qin Yong, Xia Yuanming, Mao Tianxiang, Composite hollow material flywheel ring set more simplified fine integral deformation and stress analysis, Journal of composite materials, 2003, 20(5): 95-99.

Google Scholar

[6] Li Cheng, Tie Ying, Zheng Yanping, Two layers of prestressed composite energy storage flywheel rotor structure of the stress and displacement calculations, Chinese Journal of Mechanical Engineering, 2009, 45(12): 263-268.

DOI: 10.3901/jme.2009.12.263

Google Scholar

[7] Genta G., Kinetic Energy Storage: Theory and Practice of Advanced Flywheel Systems, Butterworths, (1985).

Google Scholar

[8] N. Tutuncu, Effect of anisotropy on stresses in rotating discs, International Journal of Mechanical Science, l995, 37(8): 873-881.

DOI: 10.1016/0020-7403(94)00097-4

Google Scholar

[9] Wang Yaoxian, Composite material structure design, Chemical Industry Press, 2001, 8.

Google Scholar