2010
Strategies for Improving Tensile Ductility of Bulk Nanostructured Materials
Abstract: Strength and ductility are two of the most important mechanical properties of structural materials. High strength is desired for structural components so that they can carry high loads. Good ductility is essential to avoid catastrophic failure in load-bearing applications and is also very important for many shaping and forming operations. The ductility of materials is defined as the extent to which a material can be plastically deformed. Usually, ductility is measured as the elongation to failure in uniaxial t…
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Cited by 181 publications
(78 citation statements)
References 72 publications
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“…When a material undergoes a large amount of plastic deformation, e.g., an effective strain of two (i.e., two consecutive ECAP passes in the present research), it has already been deformed to an extent more than the amount of deformation that it can endure before localized deformation and necking occur. At this strain, the material with a low strain hardening exponent exhibits localized deformation due to its low ability to accumulate dislocations in the grain interior [8,9]. In the present research, a similar behavior was observed of the material in YS and UTS after four and six passes of ECAP.…”
Section: Changes Of Tensile Properties With Increasing Number Of Ecapsupporting
confidence: 83%
“…When a material undergoes a large amount of plastic deformation, e.g., an effective strain of two (i.e., two consecutive ECAP passes in the present research), it has already been deformed to an extent more than the amount of deformation that it can endure before localized deformation and necking occur. At this strain, the material with a low strain hardening exponent exhibits localized deformation due to its low ability to accumulate dislocations in the grain interior [8,9]. In the present research, a similar behavior was observed of the material in YS and UTS after four and six passes of ECAP.…”
Section: Changes Of Tensile Properties With Increasing Number Of Ecapsupporting
confidence: 83%
“…Hence, ultrafine-grained metallic materials are more sensitive on the strain rate compared to their coarse-grained counterparts what was also confirmed in the [39]. As the structure of nanostructured materials includes ultra-fine grains that have low ability to accumulate dislocations in their interior, nanostructured materials provide high flow stresses but low work hardening rate [40,41]. Testing at high strain rates and/or low temperatures impedes annihilation of the dislocations on grain boundaries and thermally activated cross slip and climb [39] leading to the increasing work hardening rate and enhancing uniform elongation [42].…”
Section: Dynamic Conditionsmentioning
confidence: 60%
“…First, a high number fraction of high angle boundaries is beneficial for enhancing the strength and ductility when it is compared with the effect of the dislocation hardening found in the base metal. 26, 27 In addition, the Σ3 twin boundaries also provide adequate barriers to the dislocation motion. 28, 29 Second, because of the low stacking fault energy of 70/30 brass (14 mJ m −2 ), 30 deformation twins generated during the tensile test and twinning is an effective phenomenon to obtain further hardening even in a fine grained structure.…”
Section: Resultsmentioning
confidence: 99%
