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Here we study the strain partitioning and damage behavior of these steels by carrying out in-situ high resolution microstructure and micro-strain mapping experiments.
The fretting fatigue lives are discussed in light of the low cycle fatigue and crack growth rate behavior of these steels.
We observe that controlling these parameters (i.e. Si, Al content and austempering temperature) can be used to tune the stability of the retained austenite and hence the mechanical behavior of these steels.
We investigate the influence of the austempering temperature, chemical composition (especially the Si Al ratio) and partitioning on the nanostructure and mechanical behavior of these steels by atom probe tomography.
Therefore, the present study is able assist in identifying whether the deformation-induced martensitic transformation varied as a function of carbon content and the resulting fracture behavior, thereby enabling us to understand the work-hardening behavior of these steels.
While ductility is a primary concern for steels at low temperatures (a concern which has led to extensive research in this area), a comparison of the strengthening mechanisms between microstructures gives insight into the strengthening behavior of these steels as a function of temperature.
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The creep behavior of the steel followed the temperature-compensated power law and Monkman Grant equations.
Tests were performed to predict the tensile behavior of the steel reinforcement and steel plates used for strengthening compartments.
In this paper, the numerical simulation of the mechanical behavior of the steel-cement interface was performed.
Investigating the tribological behavior of these films against steel ball is useful for implementing reliable micro-sliding based device applications.
Hence, in a second step the plasma nitrided tool steel is coated with PACVD hard coatings of the system Ti-Al-C-N and the fatigue behavior of these hard coating steel compounds is investigated.
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