A strain ratio based modification on low-cycle fatigue model for
asymmetric loading
Abstract
Mean stress based correction on low cycle fatigue (LCF) model shows
limit in asymmetric loading cases in both accuracy and applicability.
After studying the affecting mechanism of strain ratio on fatigue life
of LCF, a strain ratio based modification on Manson-Coffin model is
proposed considering variation of elastic and plastic strain. Linear
correlations between strain ratio and fatigue strength coefficient and
between strain ratio and fatigue ductility coefficient are developed and
employed in the model correction. Model verification is conducted
through three materials: high-pressure tubing steel (HPTS), 2124-T851
aluminum alloy and epoxy resin, under different strain ratios. Comparing
with current widely used LCF models, including Goodman, Walker, Morrow,
Kwofie and SWT models, the proposed model modification shows better life
prediction accuracy and higher potential in replication from symmetric
to asymmetric loading cases as well as the availability among different
materials. It is also found the strain ratio based correction is able to
consider the damage of ratcheting strain that the mean stress based
models cannot.