A novel technique to process thermoplastic composites by laser-assisted tap
e winding has been developed and evaluated. Previous investigations were li
mited to a stationary beam and consolidation of narrow prepreg tapes. The t
echnology was extended to process wider prepreg tapes using a galvanometer-
based scanning system. The energy distribution along the consolidation line
is affected by the triggering signal used to position the scanning mirror.
This distribution is predicted using a geometrical model and the results a
re confirmed experimentally with imprints of the scanned beam in Plexiglas.
It was found that the most homogenous heating of the surface is achieved i
f a triangular triggering signal is used. Density and short beam shear test
s are used to evaluate the bond quality that can be achieved using the beam
scanning system in comparison to parts fabricated with a stationary beam.
Tests have been performed on parts processed with different laser power set
tings and scanning frequencies. The shear strength increases with increasin
g laser power to an optimum value after which it decreases due to the degra
dation of the thermoplastic matrix. The scanning frequency in contrast had
no influence on the shear strength. The possibility to process wider tapes
using the scanning system was demonstrated by consolidating a one-inch wide
PPS/Carbon prepreg tape. (C) 1999 Elsevier Science Ltd. All rights reserve
d.