"Equal-channel angular pressing (ECAP) is often used as effective tool for grain refinement
for many different metallic materials. It is well known that grain size is an important microstructural
feature influencing superplastic properties of fcc materials like aluminum alloys. The magnitude of
introduced shear strain depends on geometrical parameters of the ECAP channel. In this contribution,
the impact of different geometrical parameters of the ECAP channel on the resulting magnitude of
introduced shear strain is analyzed. ECAP on AA5083 aluminum sheets with the dimensions of
200x200x1.8 mm³ is performed. Microhardness measurements reveal a considerable increase of
hardness after ECAP and microstructural investigations by electron backscatter diffraction (EBSD)
show the beginning formation of a deformation-induced substructure which is known to be a
preliminary stage of the grain refinement process. It is assumed that this fine-grained microstructure
results in an enhanced superplastic forming capability. Furthermore, a numerical model of the process
based on the experimental results is established. The bending of the ECAP processed sheet metal as
well as its microhardness are used for the validation of the model. The friction coefficient between
the channel and the aluminum sheet significantly influences the results of the simulation. With the
applied model different channel angles and inner corner radii are varied in order to determine a
maximum magnitude of deformation resulting in sufficient grain refinement of the investigated
material. With the help of the results gained in this study, suitable ECAP parameters for sheet metals
can be derived that enable creating ultrafine-grained materials for superplastic forming operations."
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"Equal-channel angular pressing (ECAP) is often used as effective tool for grain refinement
for many different metallic materials. It is well known that grain size is an important microstructural
feature influencing superplastic properties of fcc materials like aluminum alloys. The magnitude of
introduced shear strain depends on geometrical parameters of the ECAP channel. In this contribution,
the impact of different geometrical parameters of the ECAP channel on the resulting magnitude of
i...
»