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The strength is measured in terms of maximum engineering stress amplitude, neglecting any stress concentration in the threads.
The relationship between fatigue life and maximum engineering stress, maximum strain and strain energy density were studied.
General equations based on maximum engineering stress and strain energy density were developed for fatigue life prediction of MREs.
Up to pH2 of 0.05 Torr, negligible effect of H was observed on either maximum engineering stress or uniform and total elongation.
In this research, constant maximum engineering stress control tests have been carried out to evaluate the suitability of the developed dynamic bubble inflation system for equi-biaxial fatigue testing of elastomers.
In tests with a stress-controlled program, any cycle of deformation consists of tension up to a maximum engineering stress σmax and retraction down to some minimum engineering stress σmin.
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In tests with a strain-controlled program, each cycle of deformation involves tension up to a maximum engineering strain ϵmax and retraction down to the zero stress.
The hot deformation behavior of TiHy 600 alloy is characterized on the basis of flow stress variation with true stress-true strain curves at different strain rates ranging from 10−3 s−1 to 10 s−1 and hot deformation temperatures ranging from 900 °C to 1050 °C, with maximum engineering strain up to 50%.
At low Wi, Wi<10, a viscous (flowing) deformation regime characterised by a single local maximum of the tensile force (engineering stress) related to the onset of a necking instability is observed.
With WAXS, it is found that an abnormal slowing down of crystallization occurs when engineering stress passes its maximum.
The maximum values of modulus of elasticity, calculated from usual engineering stress and strain, (188.56±99.19 MPa) were smaller than those reported in the literature for active maximum voluntary contractions tests.
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