Microstructural breakdown and scale-up effects in equal channel angular extrusion of cast copper

The primary objectives of this study were: (1) to verify the effectiveness of ECAE to induce equal amounts of strain and grain refinement in bars of different cross-sectional areas, (2) to determine the effectiveness of ECAE in breaking down the as-cast macrostructure in CDA 101 Cu and in producing...

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Main Author: Kadri, Shabibahmed Jehangir
Other Authors: Hartwig, Karl Theodore
Format: Others
Language:en_US
Published: Texas A&M University 2006
Subjects:
Online Access:http://hdl.handle.net/1969.1/4341
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spelling ndltd-tamu.edu-oai-repository.tamu.edu-1969.1-43412013-01-08T10:38:27ZMicrostructural breakdown and scale-up effects in equal channel angular extrusion of cast copperKadri, Shabibahmed Jehangirannealing heat treatmentcastcopperECAErecrystallizationscale-upsevere plastic deformationthermo-mechanical processing.The primary objectives of this study were: (1) to verify the effectiveness of ECAE to induce equal amounts of strain and grain refinement in bars of different cross-sectional areas, (2) to determine the effectiveness of ECAE in breaking down the as-cast macrostructure in CDA 101 Cu and in producing a homogeneous material containing micron-scale grains upon recrystallization, and (3) to determine a thermomechanical processing (TMP) schedule (from the ones examined) that produces the best microstructure in terms of grain size and uniformity. The effects of extrus ion route, levels of strain and intermediate heat treatment were investigated. To achieve the first objective, bars having square cross-sections of three different sizes, 19 mm, 25 mm and 50 mm, were processed up to eight ECAE passes through routes A, B, C and E. To achieve the second and third objectives, bars were processed up to eight ECAE passes with and without intermediate heat treatments through routes Bc, C, E and F. ECAE processing was carried out in a 90o extrusion die with sliding walls at an extrusion speed of 2.5 mm/s. Recrystallization studies were carried out on the processed material to evaluate the recrystallization behavior and thermal stability of the material. The as-worked and recrystallized materials were characterized by Vickers microhardness, optical microscopy (OM) and transmission electron microscopy (TEM). Results indicate that similar hardness values, sub-grain morphology and recrystallized grain size are generated in the three bars having different cross-sectional sizes processed through ECAE. ECAE is shown to induce uniform strain in all three billet sizes. ECAE is therefore shown to be effective in scale-up to a size of at least 50 mm, with larger billets giving better load efficiency. Results from the later parts of this study indicate that eight extrusion passes via route Bc produces the best microstructure in terms of grain size and microstructural uniformity. The routes can be arranged in the sequence Bc> E, F> C for their ability to produce a uniform recrystallized microstructure with small average grain size. Macroscopic shear bands are sometimes generated during extrusion depending upon the initial grain morphology and texture of the material.Texas A&M UniversityHartwig, Karl Theodore2006-10-30T23:30:18Z2006-10-30T23:30:18Z2005-082006-10-30T23:30:18ZBookThesisElectronic Thesistext19547967 byteselectronicapplication/pdfborn digitalhttp://hdl.handle.net/1969.1/4341en_US
collection NDLTD
language en_US
format Others
sources NDLTD
topic annealing heat treatment
cast
copper
ECAE
recrystallization
scale-up
severe plastic deformation
thermo-mechanical processing.
spellingShingle annealing heat treatment
cast
copper
ECAE
recrystallization
scale-up
severe plastic deformation
thermo-mechanical processing.
Kadri, Shabibahmed Jehangir
Microstructural breakdown and scale-up effects in equal channel angular extrusion of cast copper
description The primary objectives of this study were: (1) to verify the effectiveness of ECAE to induce equal amounts of strain and grain refinement in bars of different cross-sectional areas, (2) to determine the effectiveness of ECAE in breaking down the as-cast macrostructure in CDA 101 Cu and in producing a homogeneous material containing micron-scale grains upon recrystallization, and (3) to determine a thermomechanical processing (TMP) schedule (from the ones examined) that produces the best microstructure in terms of grain size and uniformity. The effects of extrus ion route, levels of strain and intermediate heat treatment were investigated. To achieve the first objective, bars having square cross-sections of three different sizes, 19 mm, 25 mm and 50 mm, were processed up to eight ECAE passes through routes A, B, C and E. To achieve the second and third objectives, bars were processed up to eight ECAE passes with and without intermediate heat treatments through routes Bc, C, E and F. ECAE processing was carried out in a 90o extrusion die with sliding walls at an extrusion speed of 2.5 mm/s. Recrystallization studies were carried out on the processed material to evaluate the recrystallization behavior and thermal stability of the material. The as-worked and recrystallized materials were characterized by Vickers microhardness, optical microscopy (OM) and transmission electron microscopy (TEM). Results indicate that similar hardness values, sub-grain morphology and recrystallized grain size are generated in the three bars having different cross-sectional sizes processed through ECAE. ECAE is shown to induce uniform strain in all three billet sizes. ECAE is therefore shown to be effective in scale-up to a size of at least 50 mm, with larger billets giving better load efficiency. Results from the later parts of this study indicate that eight extrusion passes via route Bc produces the best microstructure in terms of grain size and microstructural uniformity. The routes can be arranged in the sequence Bc> E, F> C for their ability to produce a uniform recrystallized microstructure with small average grain size. Macroscopic shear bands are sometimes generated during extrusion depending upon the initial grain morphology and texture of the material.
author2 Hartwig, Karl Theodore
author_facet Hartwig, Karl Theodore
Kadri, Shabibahmed Jehangir
author Kadri, Shabibahmed Jehangir
author_sort Kadri, Shabibahmed Jehangir
title Microstructural breakdown and scale-up effects in equal channel angular extrusion of cast copper
title_short Microstructural breakdown and scale-up effects in equal channel angular extrusion of cast copper
title_full Microstructural breakdown and scale-up effects in equal channel angular extrusion of cast copper
title_fullStr Microstructural breakdown and scale-up effects in equal channel angular extrusion of cast copper
title_full_unstemmed Microstructural breakdown and scale-up effects in equal channel angular extrusion of cast copper
title_sort microstructural breakdown and scale-up effects in equal channel angular extrusion of cast copper
publisher Texas A&M University
publishDate 2006
url http://hdl.handle.net/1969.1/4341
work_keys_str_mv AT kadrishabibahmedjehangir microstructuralbreakdownandscaleupeffectsinequalchannelangularextrusionofcastcopper
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