Analysis of Deep Drawing Process for Stainless Steel Micro-Channel Array

The stainless steel bipolar plate has received much attention due to the cost of graphite bipolar plates. Since the micro-channel of bipolar plates plays the role of fuel flow field, electric connector and fuel sealing, an investigation of the deep drawing process for stainless steel micro-channel a...

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Main Authors: Tsung-Chia Chen, Jiang-Cheng Lin, Rong-Mao Lee
Format: Article
Language:English
Published: MDPI AG 2017-04-01
Series:Materials
Subjects:
Online Access:http://www.mdpi.com/1996-1944/10/4/423
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spelling doaj-cfe4be8fe5dd4043b3c129bc45d1cad02020-11-24T20:59:00ZengMDPI AGMaterials1996-19442017-04-0110442310.3390/ma10040423ma10040423Analysis of Deep Drawing Process for Stainless Steel Micro-Channel ArrayTsung-Chia Chen0Jiang-Cheng Lin1Rong-Mao Lee2Department of Mechanical Engineering, National Chin-Yi University of Technology, Taichung City 411, TaiwanDepartment of Mechanical Engineering, National Chin-Yi University of Technology, Taichung City 411, TaiwanDepartment of Mechanical Engineering, National Chin-Yi University of Technology, Taichung City 411, TaiwanThe stainless steel bipolar plate has received much attention due to the cost of graphite bipolar plates. Since the micro-channel of bipolar plates plays the role of fuel flow field, electric connector and fuel sealing, an investigation of the deep drawing process for stainless steel micro-channel arrays is reported in this work. The updated Lagrangian formulation, degenerated shell finite element analysis, and the r-minimum rule have been employed to study the relationship between punch load and stroke, distributions of stress and strain, thickness variations and depth variations of individual micro-channel sections. A micro-channel array is practically formed, with a width and depth of a single micro-channel of 0.75 mm and 0.5 mm, respectively. Fractures were usually observed in the fillet corner of the micro-channel bottom. According to the experimental results, more attention should be devoted to the fillet dimension design of punch and die. A larger die fillet can lead to better formability and a reduction of the punch load. In addition, the micro-channel thickness and the fillet radius have to be taken into consideration at the same time. Finally, the punch load estimated by the unmodified metal forming equation is higher than that of experiments.http://www.mdpi.com/1996-1944/10/4/423micro-formingdeep drawingmicro-channel
collection DOAJ
language English
format Article
sources DOAJ
author Tsung-Chia Chen
Jiang-Cheng Lin
Rong-Mao Lee
spellingShingle Tsung-Chia Chen
Jiang-Cheng Lin
Rong-Mao Lee
Analysis of Deep Drawing Process for Stainless Steel Micro-Channel Array
Materials
micro-forming
deep drawing
micro-channel
author_facet Tsung-Chia Chen
Jiang-Cheng Lin
Rong-Mao Lee
author_sort Tsung-Chia Chen
title Analysis of Deep Drawing Process for Stainless Steel Micro-Channel Array
title_short Analysis of Deep Drawing Process for Stainless Steel Micro-Channel Array
title_full Analysis of Deep Drawing Process for Stainless Steel Micro-Channel Array
title_fullStr Analysis of Deep Drawing Process for Stainless Steel Micro-Channel Array
title_full_unstemmed Analysis of Deep Drawing Process for Stainless Steel Micro-Channel Array
title_sort analysis of deep drawing process for stainless steel micro-channel array
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2017-04-01
description The stainless steel bipolar plate has received much attention due to the cost of graphite bipolar plates. Since the micro-channel of bipolar plates plays the role of fuel flow field, electric connector and fuel sealing, an investigation of the deep drawing process for stainless steel micro-channel arrays is reported in this work. The updated Lagrangian formulation, degenerated shell finite element analysis, and the r-minimum rule have been employed to study the relationship between punch load and stroke, distributions of stress and strain, thickness variations and depth variations of individual micro-channel sections. A micro-channel array is practically formed, with a width and depth of a single micro-channel of 0.75 mm and 0.5 mm, respectively. Fractures were usually observed in the fillet corner of the micro-channel bottom. According to the experimental results, more attention should be devoted to the fillet dimension design of punch and die. A larger die fillet can lead to better formability and a reduction of the punch load. In addition, the micro-channel thickness and the fillet radius have to be taken into consideration at the same time. Finally, the punch load estimated by the unmodified metal forming equation is higher than that of experiments.
topic micro-forming
deep drawing
micro-channel
url http://www.mdpi.com/1996-1944/10/4/423
work_keys_str_mv AT tsungchiachen analysisofdeepdrawingprocessforstainlesssteelmicrochannelarray
AT jiangchenglin analysisofdeepdrawingprocessforstainlesssteelmicrochannelarray
AT rongmaolee analysisofdeepdrawingprocessforstainlesssteelmicrochannelarray
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