Springback prediction of three-dimensional variable curvature tube bending

The springback phenomenon of tube bending occurs consequentially after unloading, which will affect the manufacturing accuracy and processing efficiency of the tubular products. In this article, the bending and springback processes of minor-diameter thick-walled tube are simulated by ABAQUS to revea...

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Main Authors: Shen Zhang, Jianjun Wu
Format: Article
Language:English
Published: SAGE Publishing 2016-03-01
Series:Advances in Mechanical Engineering
Online Access:https://doi.org/10.1177/1687814016637327
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spelling doaj-57ad23a2d9e04290b63dae9044df8ee62020-11-25T02:50:41ZengSAGE PublishingAdvances in Mechanical Engineering1687-81402016-03-01810.1177/168781401663732710.1177_1687814016637327Springback prediction of three-dimensional variable curvature tube bendingShen Zhang0Jianjun Wu1China Academy of Aerospace Systems Science and Engineering, Beijing, ChinaKey Laboratory of Contemporary Design and Integrated Manufacturing Technology, Ministry of Education, Northwestern Polytechnical University, Xi’an, ChinaThe springback phenomenon of tube bending occurs consequentially after unloading, which will affect the manufacturing accuracy and processing efficiency of the tubular products. In this article, the bending and springback processes of minor-diameter thick-walled tube are simulated by ABAQUS to reveal the springback laws. The springback prediction of three-dimensional variable curvature bent tube is projected on each discrete osculating and rectifying plane, and then the three-dimensional problem can be transformed into two dimensions. The mathematic relationship of the radius before and after springback in the plane is built by approximate pure bending springback experiments. The springback on such planes is transformed into three dimensions. The tube axes are merged by first-order geometric (G1) continuity and then compensated with the modified function according to the axis complexity, so as to establish mathematic analytic model for springback prediction of three-dimensional variable curvature tube bending. Finally, the feasibility, reliability, and accuracy of the model are verified by finite element method and experiments.https://doi.org/10.1177/1687814016637327
collection DOAJ
language English
format Article
sources DOAJ
author Shen Zhang
Jianjun Wu
spellingShingle Shen Zhang
Jianjun Wu
Springback prediction of three-dimensional variable curvature tube bending
Advances in Mechanical Engineering
author_facet Shen Zhang
Jianjun Wu
author_sort Shen Zhang
title Springback prediction of three-dimensional variable curvature tube bending
title_short Springback prediction of three-dimensional variable curvature tube bending
title_full Springback prediction of three-dimensional variable curvature tube bending
title_fullStr Springback prediction of three-dimensional variable curvature tube bending
title_full_unstemmed Springback prediction of three-dimensional variable curvature tube bending
title_sort springback prediction of three-dimensional variable curvature tube bending
publisher SAGE Publishing
series Advances in Mechanical Engineering
issn 1687-8140
publishDate 2016-03-01
description The springback phenomenon of tube bending occurs consequentially after unloading, which will affect the manufacturing accuracy and processing efficiency of the tubular products. In this article, the bending and springback processes of minor-diameter thick-walled tube are simulated by ABAQUS to reveal the springback laws. The springback prediction of three-dimensional variable curvature bent tube is projected on each discrete osculating and rectifying plane, and then the three-dimensional problem can be transformed into two dimensions. The mathematic relationship of the radius before and after springback in the plane is built by approximate pure bending springback experiments. The springback on such planes is transformed into three dimensions. The tube axes are merged by first-order geometric (G1) continuity and then compensated with the modified function according to the axis complexity, so as to establish mathematic analytic model for springback prediction of three-dimensional variable curvature tube bending. Finally, the feasibility, reliability, and accuracy of the model are verified by finite element method and experiments.
url https://doi.org/10.1177/1687814016637327
work_keys_str_mv AT shenzhang springbackpredictionofthreedimensionalvariablecurvaturetubebending
AT jianjunwu springbackpredictionofthreedimensionalvariablecurvaturetubebending
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