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A power exponential relationship between pit depth and time in atmospheric corrosion environment [17, 18] can be expressed as d = 0.062t^{0.862}, (24 where d is pit depth (mm); t is time (year).
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Further, the pit depth was measured, and the relationship between the relative maximum pit depth and fatigue life of the corroded specimens was explored.
A linear relationship between the relative maximum pit depth and the relative fatigue life of the corroded specimens was observed under three given stress ranges.
The generalized extreme value distribution, such as Weibull, provides adequate statistical descriptions of the pit depth and pit diameter distributions.
It was also possible to study the evolution of both the pit depth and the pit diameter as a function of various parameters.
Based on our FRMD7 expression results, we assessed retinal structure in FRMD7 patients by measuring foveal pit depth and central macular and photoreceptor outer segment thickness.
Figure 11 shows a relationship between average pitting depths and corrosion-induced loss of tensile yield force in R/FS31 and R/FS32 specimens.
The pit location, pit diameter and pit depth are examined to determine the influence of the pitting on the ultimate strength.
Recently, novel models for corrosion loss and maximum pit depth under marine immersion conditions have been developed.
Both the island height and the pit depth can be much greater than the average layer thickness.
Osteoclasts from PI3Kβ−/− mice also showed reduced bone contact length and resorption pit depth in vivo.
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