Title of article :
A fatigue-to-creep correlation in air for application to
environmental stress cracking of polyethylene
Author/Authors :
Ravi Ayyer، نويسنده , , Anne Hiltner، نويسنده , , Eric Baer، نويسنده ,
Issue Information :
دوهفته نامه با شماره پیاپی سال 2007
Abstract :
The present study was undertaken to determine
whether the correlation between fatigue and creep established
for polyethylene in air could be extended to environmental
liquids. Fatigue and creep tests under various
conditions of stress, R-ratio (defined as the ratio of minimum
to maximum load in the fatigue loading cycle), and
frequency were performed in air and in Igepal solutions.
The load–displacement curves indicated that stepwise
fatigue crack growth in air was preserved in Igepal solutions
at 50 C, the temperature specified for the ASTM
standard. In air, systematically decreasing the dynamic
component of fatigue loading by increasing the R-ratio to
R = 1 (creep) steadily increased the lifetime. In contrast,
the lifetime in Igepal was affected to a much smaller
extent. The fatigue to creep correlation in air was previously
established primarily for tests at 21 C. Before testing
the correlation in Igepal, it was necessary to establish
the correlation in air at 50 C. Microscopic methods were
used to verify stepwise crack growth by the sequential
formation and breakdown of a craze zone, and to confirm
the fatigue to creep correlation. The crack growth rate
under various loading conditions was related to the maximum
stress and R-ratio by a power law relationship.
Alternatively, a strain rate approach, which considered a
creep contribution and a fatigue acceleration factor that
depended only on strain rate, reliably correlated fatigue and
creep in air at 50 C under most loading conditions of
stress, R-ratio and frequency. The exceptions were fatigue
loading under conditions of R = 0.1 and frequency less
than 1 Hz. It was speculated that compression and bending
of highly extended craze fibrils were responsible for
unexpectedly high crack speeds
Journal title :
Journal of Materials Science
Journal title :
Journal of Materials Science