Chip Morphology and Chip Formation Mechanisms During Machining of ECAE-Processed TitaniumSource: Journal of Manufacturing Science and Engineering:;2018:;volume( 140 ):;issue: 003::page 31008Author:Davis, Brian
,
Dabrow, David
,
Newell, Ryan
,
Miller, Andrew
,
Schueller, John K.
,
Xiao, Guoxian
,
Liang, Steven Y.
,
Hartwig, Karl T.
,
Ruzycki, Nancy J.
,
Sohn, Yongho
,
Huang, Yong
DOI: 10.1115/1.4038442Publisher: The American Society of Mechanical Engineers (ASME)
Abstract: Severe plastic deformation (SPD) processing such as equal channel angular extrusion (ECAE) has been pioneered to produce ultrafine grained (UFG) metals for improved mechanical and physical properties. However, understanding the machining of SPD-processed metals is still limited. This study aims to investigate the differences in chip morphology when machining ECAE-processed UFG and coarse-grained (CG) titanium (Ti) and understand the chip formation mechanism using metallographic analysis, digital imaging correlation (DIC), and nano-indentation. The chip morphology is classified as aperiodic saw-tooth, continuous, or periodic saw-tooth, and changes with the cutting speed. The chip formation mechanism of the ECAE-processed Ti transitions from cyclic shear localization within the low cutting speed regime (such as 0.1 m/s or higher) to uniform shear localization within the moderately high cutting speed regime (such as from 0.5 to 1.0 m/s) and to cyclic shear localization (1.0 m/s). The shear band spacing increases with the cutting speed and is always lower than that of the CG counterpart. If the shear strain rate distribution contains a shift in the chip flow direction, the chip morphology appears saw-tooth, and cyclic shear localization is the chip formation mechanism. If no such shift occurs, the chip formation is considered continuous, and uniform shear localization is the chip formation mechanism. Hardness measurements show that cyclic shear localization is the chip formation mechanism when localized hardness peaks occur, whereas uniform shear localization is operative when the hardness is relatively constant.
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contributor author | Davis, Brian | |
contributor author | Dabrow, David | |
contributor author | Newell, Ryan | |
contributor author | Miller, Andrew | |
contributor author | Schueller, John K. | |
contributor author | Xiao, Guoxian | |
contributor author | Liang, Steven Y. | |
contributor author | Hartwig, Karl T. | |
contributor author | Ruzycki, Nancy J. | |
contributor author | Sohn, Yongho | |
contributor author | Huang, Yong | |
date accessioned | 2019-02-28T11:02:04Z | |
date available | 2019-02-28T11:02:04Z | |
date copyright | 12/21/2017 12:00:00 AM | |
date issued | 2018 | |
identifier issn | 1087-1357 | |
identifier other | manu_140_03_031008.pdf | |
identifier uri | http://yetl.yabesh.ir/yetl1/handle/yetl/4251941 | |
description abstract | Severe plastic deformation (SPD) processing such as equal channel angular extrusion (ECAE) has been pioneered to produce ultrafine grained (UFG) metals for improved mechanical and physical properties. However, understanding the machining of SPD-processed metals is still limited. This study aims to investigate the differences in chip morphology when machining ECAE-processed UFG and coarse-grained (CG) titanium (Ti) and understand the chip formation mechanism using metallographic analysis, digital imaging correlation (DIC), and nano-indentation. The chip morphology is classified as aperiodic saw-tooth, continuous, or periodic saw-tooth, and changes with the cutting speed. The chip formation mechanism of the ECAE-processed Ti transitions from cyclic shear localization within the low cutting speed regime (such as 0.1 m/s or higher) to uniform shear localization within the moderately high cutting speed regime (such as from 0.5 to 1.0 m/s) and to cyclic shear localization (1.0 m/s). The shear band spacing increases with the cutting speed and is always lower than that of the CG counterpart. If the shear strain rate distribution contains a shift in the chip flow direction, the chip morphology appears saw-tooth, and cyclic shear localization is the chip formation mechanism. If no such shift occurs, the chip formation is considered continuous, and uniform shear localization is the chip formation mechanism. Hardness measurements show that cyclic shear localization is the chip formation mechanism when localized hardness peaks occur, whereas uniform shear localization is operative when the hardness is relatively constant. | |
publisher | The American Society of Mechanical Engineers (ASME) | |
title | Chip Morphology and Chip Formation Mechanisms During Machining of ECAE-Processed Titanium | |
type | Journal Paper | |
journal volume | 140 | |
journal issue | 3 | |
journal title | Journal of Manufacturing Science and Engineering | |
identifier doi | 10.1115/1.4038442 | |
journal fristpage | 31008 | |
journal lastpage | 031008-12 | |
tree | Journal of Manufacturing Science and Engineering:;2018:;volume( 140 ):;issue: 003 | |
contenttype | Fulltext |