Circumferential Material Flow in the Hydroforming of Overlapping Blanks

The hydroforming of the overlapping blanks is a forming process where overlapping tubular blanks are used instead of tubes to enhance the forming limit and improve the thickness distribution. A distinguishing characteristic of the hydroforming of overlapping blanks is that the material can flow alon...

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Main Authors: Cong Han, Hao Feng
Format: Article
Language:English
Published: MDPI AG 2020-06-01
Series:Metals
Subjects:
Online Access:https://www.mdpi.com/2075-4701/10/7/864
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spelling doaj-2d66b9faf6ae4164a64f14eb2a95d98d2020-11-25T02:13:44ZengMDPI AGMetals2075-47012020-06-011086486410.3390/met10070864Circumferential Material Flow in the Hydroforming of Overlapping BlanksCong Han0Hao Feng1School of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, ChinaSchool of Materials Science and Engineering, Harbin Institute of Technology, Harbin 150001, ChinaThe hydroforming of the overlapping blanks is a forming process where overlapping tubular blanks are used instead of tubes to enhance the forming limit and improve the thickness distribution. A distinguishing characteristic of the hydroforming of overlapping blanks is that the material can flow along the circumferential direction easily. In this research, the circumferential material flow was investigated using overlapping blanks with axial constraints to study the circumferential material flow in the hydroforming of a variable-diameter part. AISI 304 stainless steel blanks were selected for numerical simulation and experimental research. The circumferential material flow distribution was obtained from the profile at the edge of the overlap. The peak value located at the middle cross-section. In addition, the circumferential material flow could be also reflected in the variation of the overlap angle. The variation of the overlap angle kept increasing as the initial overlap angle increased but the improvement of the thickness distribution did not. There was an optimal initial overlap angle to minimize the thinning ratio. An optimal thickness distribution was obtained when the initial angle was 120° for the hydroforming of the variable-diameter part with an expansion of 31.6%.https://www.mdpi.com/2075-4701/10/7/864hydroformingoverlapping blankvariable-diameter partthickness
collection DOAJ
language English
format Article
sources DOAJ
author Cong Han
Hao Feng
spellingShingle Cong Han
Hao Feng
Circumferential Material Flow in the Hydroforming of Overlapping Blanks
Metals
hydroforming
overlapping blank
variable-diameter part
thickness
author_facet Cong Han
Hao Feng
author_sort Cong Han
title Circumferential Material Flow in the Hydroforming of Overlapping Blanks
title_short Circumferential Material Flow in the Hydroforming of Overlapping Blanks
title_full Circumferential Material Flow in the Hydroforming of Overlapping Blanks
title_fullStr Circumferential Material Flow in the Hydroforming of Overlapping Blanks
title_full_unstemmed Circumferential Material Flow in the Hydroforming of Overlapping Blanks
title_sort circumferential material flow in the hydroforming of overlapping blanks
publisher MDPI AG
series Metals
issn 2075-4701
publishDate 2020-06-01
description The hydroforming of the overlapping blanks is a forming process where overlapping tubular blanks are used instead of tubes to enhance the forming limit and improve the thickness distribution. A distinguishing characteristic of the hydroforming of overlapping blanks is that the material can flow along the circumferential direction easily. In this research, the circumferential material flow was investigated using overlapping blanks with axial constraints to study the circumferential material flow in the hydroforming of a variable-diameter part. AISI 304 stainless steel blanks were selected for numerical simulation and experimental research. The circumferential material flow distribution was obtained from the profile at the edge of the overlap. The peak value located at the middle cross-section. In addition, the circumferential material flow could be also reflected in the variation of the overlap angle. The variation of the overlap angle kept increasing as the initial overlap angle increased but the improvement of the thickness distribution did not. There was an optimal initial overlap angle to minimize the thinning ratio. An optimal thickness distribution was obtained when the initial angle was 120° for the hydroforming of the variable-diameter part with an expansion of 31.6%.
topic hydroforming
overlapping blank
variable-diameter part
thickness
url https://www.mdpi.com/2075-4701/10/7/864
work_keys_str_mv AT conghan circumferentialmaterialflowinthehydroformingofoverlappingblanks
AT haofeng circumferentialmaterialflowinthehydroformingofoverlappingblanks
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