Title :
Large Magnetostriction in Epoxy-Bonded Terfenol-D Continuous-Fiber Composite With [112] Crystallographic Orientation
Author :
Lo, Ching Yin ; Or, Siu Wing ; Chan, Helen Lai Wa
Author_Institution :
Dept. of Appl. Phys., Hong Kong Polytech., Kowloon
Abstract :
A Terfenol-D continuous-fiber composite with a preferred [112] crystallographic orientation was fabricated by embedding 50-vol% [112]-oriented Terfenol-D continuous fibers of 45 mm long and 1 mm wide in an epoxy matrix, and its magnetic and magnetostrictive properties were evaluated as a function of magnetic field. A [112]-oriented short-fiber composite with reduced Terfenol-D fiber lengths of 4 mm and a randomly oriented particulate composite with irregularly shaped Terfenol-D particles of 10-300 mum size, both with 50-vol% Terfenol-D, were also prepared and characterized for comparison with the continuous-fiber composite and monolithic Terfenol-D. The continuous-fiber composite demonstrated the largest magnetostrictive response with the highest saturation magnetostriction (lambdaS ) of 1265 ppm. This lambdaS not only is 23% and 92% larger than the short-fiber and particulate composites, respectively, but also exceeds the monolithic Terfenol-D by 14%. The higher lambda S compared to the monolithic Terfenol-D, short-fiber composite, and particulate composite mainly originates from the residual compressive stresses developed in the continuous fibers during epoxy cure, a higher fiber aspect ratio for greater stress transfer from the fibers to the matrix, and texturing of the fibers along the highly magnetostrictive [112] crystallographic axis, respectively
Keywords :
crystal orientation; fibre reinforced composites; magnetic fields; magnetic particles; magnetostriction; 1 mm; 10 to 300 micron; 45 mm; Terfenol-D continuous-fiber composite; Terfenol-D particles; crystallographic orientation; fiber aspect ratio; magnetic field; magnetic properties; magnetostrictive crystallographic axis; magnetostrictive properties; monolithic Terfenol-D; particulate composite; residual compressive stresses; saturation magnetostriction; short-fiber composite; Composite materials; Compressive stress; Crystalline materials; Crystallography; Magnetic fields; Magnetic materials; Magnetic properties; Magnetostriction; Physics; Saturation magnetization; Terfenol-D; [112] crystallographic orientation; domain-wall motion; fiber composites; magnetostriction; particulate composites;
Journal_Title :
Magnetics, IEEE Transactions on
DOI :
10.1109/TMAG.2006.878873