Title :
Composite Energy Storage Flywheel Design for Fatigue Crack Resistance
Author :
Tzeng, Jerome T. ; Moy, Paul
Author_Institution :
US Army Res. Lab., Weapons & Mater. Res. Directorate, Aberdeen Proving Ground, MD
Abstract :
Composite flywheels can be a high density energy storage device because of the very high specific strength and strength per unit weight. The rotors are fiber reinforced in the circumferential direction to resist centripetal loads resulting from high speed rotation. A press-fit process is also used to induce pre-compression in the radial direction that improves mechanical strength by preventing radial separation of rotors. This design and fabrication process however leaves the radial and axial directions of rotor vulnerable to propagation of fatigue crack growth in the rotor. A semi-empirical approach is proposed to enhance the "crack growth" resistance of the rotor. Axial glass plies are incorporated to confine the crack growth through the radius and along the circumferential direction of rotor. The fracture properties of specific hybrid laminates are then measured to provide information required for an optimal rotor design.
Keywords :
energy storage; fatigue cracks; fibre reinforced composites; flywheels; rotors; axial glass plies; circumferential direction; composite flywheels; energy storage device; fatigue crack resistance; fiber reinforced; high speed rotation; hybrid laminates; mechanical strength; pre-compression; radial direction; rotors; Electrical resistance measurement; Energy storage; Fabrication; Fatigue; Flywheels; Glass; Laminates; Optical fiber devices; Process design; Resists;
Conference_Titel :
Electromagnetic Launch Technology, 2008 14th Symposium on
Conference_Location :
Victoria, BC
Print_ISBN :
978-1-4244-1832-9
Electronic_ISBN :
978-1-4244-1833-6
DOI :
10.1109/ELT.2008.23