Investigation of Micro-Bending of Sheet Metal Laminates by Laser-Driven Soft Punch in Warm Conditions

Microscale laser dynamic flexible forming (µLDFF) is a novel ultrahigh strain rate manufacturing technology with high efficiency and low cost. However, the µLDFF is just confined to single-layer foil at present. In this work, sheet metal laminates (Cu/Ni) were selected as the experimental material f...

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Main Authors: Huixia Liu, Guoce Zhang, Zongbao Shen, Wenhao Zhang, Xiao Wang
Format: Article
Language:English
Published: MDPI AG 2017-07-01
Series:Micromachines
Subjects:
Online Access:https://www.mdpi.com/2072-666X/8/7/224
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spelling doaj-a0ab9e8f73374ad9ba4bb86adaabc59a2020-11-24T21:23:14ZengMDPI AGMicromachines2072-666X2017-07-018722410.3390/mi8070224mi8070224Investigation of Micro-Bending of Sheet Metal Laminates by Laser-Driven Soft Punch in Warm ConditionsHuixia Liu0Guoce Zhang1Zongbao Shen2Wenhao Zhang3Xiao Wang4School of Mechanical Engineering, Jiangsu University, Zhenjiang 212013, ChinaSchool of Mechanical Engineering, Jiangsu University, Zhenjiang 212013, ChinaSchool of Mechanical Engineering, Jiangsu University, Zhenjiang 212013, ChinaSchool of Mechanical Engineering, Jiangsu University, Zhenjiang 212013, ChinaSchool of Mechanical Engineering, Jiangsu University, Zhenjiang 212013, ChinaMicroscale laser dynamic flexible forming (µLDFF) is a novel ultrahigh strain rate manufacturing technology with high efficiency and low cost. However, the µLDFF is just confined to single-layer foil at present. In this work, sheet metal laminates (Cu/Ni) were selected as the experimental material for its excellent mechanical and functional properties, and a new micro-bending method of sheet metal laminates by laser-driven soft punch was proposed in warm conditions. The micro-mold and warm platform were designed to investigate the effects of temperature and energy on formability, which were characterized by forming accuracy, surface quality, element diffusion, and so on. The experimental results show that the forming accuracy and quality increased first and then decreased with laser energy, but the hardness increased consistently. In warm conditions, the fluidity of material was improved. The forming depth and accuracy increased for the relieved springback, and the surface quality increased first and then decreased. The tensile fracture disappeared with temperature for the decreased hardness and thinning ratio, and the element diffusion occurred. Overall, this study indicates that the formability can be improved in warm conditions and provides a basis for the investigation of micro-bending of sheet metal laminates by µLDFF in warm conditions.https://www.mdpi.com/2072-666X/8/7/224micro-bendingsheet metal laminateslaser-driven soft punchspringbackelement diffusionwarm conditions
collection DOAJ
language English
format Article
sources DOAJ
author Huixia Liu
Guoce Zhang
Zongbao Shen
Wenhao Zhang
Xiao Wang
spellingShingle Huixia Liu
Guoce Zhang
Zongbao Shen
Wenhao Zhang
Xiao Wang
Investigation of Micro-Bending of Sheet Metal Laminates by Laser-Driven Soft Punch in Warm Conditions
Micromachines
micro-bending
sheet metal laminates
laser-driven soft punch
springback
element diffusion
warm conditions
author_facet Huixia Liu
Guoce Zhang
Zongbao Shen
Wenhao Zhang
Xiao Wang
author_sort Huixia Liu
title Investigation of Micro-Bending of Sheet Metal Laminates by Laser-Driven Soft Punch in Warm Conditions
title_short Investigation of Micro-Bending of Sheet Metal Laminates by Laser-Driven Soft Punch in Warm Conditions
title_full Investigation of Micro-Bending of Sheet Metal Laminates by Laser-Driven Soft Punch in Warm Conditions
title_fullStr Investigation of Micro-Bending of Sheet Metal Laminates by Laser-Driven Soft Punch in Warm Conditions
title_full_unstemmed Investigation of Micro-Bending of Sheet Metal Laminates by Laser-Driven Soft Punch in Warm Conditions
title_sort investigation of micro-bending of sheet metal laminates by laser-driven soft punch in warm conditions
publisher MDPI AG
series Micromachines
issn 2072-666X
publishDate 2017-07-01
description Microscale laser dynamic flexible forming (µLDFF) is a novel ultrahigh strain rate manufacturing technology with high efficiency and low cost. However, the µLDFF is just confined to single-layer foil at present. In this work, sheet metal laminates (Cu/Ni) were selected as the experimental material for its excellent mechanical and functional properties, and a new micro-bending method of sheet metal laminates by laser-driven soft punch was proposed in warm conditions. The micro-mold and warm platform were designed to investigate the effects of temperature and energy on formability, which were characterized by forming accuracy, surface quality, element diffusion, and so on. The experimental results show that the forming accuracy and quality increased first and then decreased with laser energy, but the hardness increased consistently. In warm conditions, the fluidity of material was improved. The forming depth and accuracy increased for the relieved springback, and the surface quality increased first and then decreased. The tensile fracture disappeared with temperature for the decreased hardness and thinning ratio, and the element diffusion occurred. Overall, this study indicates that the formability can be improved in warm conditions and provides a basis for the investigation of micro-bending of sheet metal laminates by µLDFF in warm conditions.
topic micro-bending
sheet metal laminates
laser-driven soft punch
springback
element diffusion
warm conditions
url https://www.mdpi.com/2072-666X/8/7/224
work_keys_str_mv AT huixialiu investigationofmicrobendingofsheetmetallaminatesbylaserdrivensoftpunchinwarmconditions
AT guocezhang investigationofmicrobendingofsheetmetallaminatesbylaserdrivensoftpunchinwarmconditions
AT zongbaoshen investigationofmicrobendingofsheetmetallaminatesbylaserdrivensoftpunchinwarmconditions
AT wenhaozhang investigationofmicrobendingofsheetmetallaminatesbylaserdrivensoftpunchinwarmconditions
AT xiaowang investigationofmicrobendingofsheetmetallaminatesbylaserdrivensoftpunchinwarmconditions
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