Innovative tools to improve incremental bulk forming processes

被引:10
作者
Sieczkarek, P. [1 ]
Kwiatkowski, L. [1 ]
Tekkaya, A. E. [1 ]
Krebs, E.
Kersting, P.
Tillmann, W.
Herper, J.
机构
[1] TU Dortmund, Inst Forming Technol & Lightweight Construct, D-44227 Dortmund, Germany
来源
CURRENT STATE-OF-THE-ART ON MATERIAL FORMING: NUMERICAL AND EXPERIMENTAL APPROACHES AT DIFFERENT LENGTH-SCALES, PTS 1-3 | 2013年 / 554-557卷
关键词
Sheet-bulk metal forming; incremental forming; cog styling; micromilling; bionic microstructures; PVD; CrAIN;
D O I
10.4028/www.scientific.net/KEM.554-557.1490
中图分类号
T [工业技术];
学科分类号
08 ;
摘要
Sheet-bulk metal forming is an innovative process with a high potential to generate load-adapted parts with high precision. Bulk forming processes of sheet metals especially require high process forces, resulting in an intense contact pressure and, thus, in a very high abrasive and adhesive wear. As a method to reduce or avoid these common wear phenomena, even hardened or coated tool surfaces are not sufficient. The objective of this paper is to show an improvement of the tool resistance during an incremental forming process by an adapted tool design and the application of structured tool surfaces combined with coatings. For the tool surface the structure of the scarabaeus beetle serves as the basis for a bionic structure. This structure was manufactured by micromilling. Despite the high hardness of the tool material and the complex geometry of the forming tools, very precise patterns were machined successfully using ball-end milling cutters. The combination of bionic structures with coating techniques like physical vapor deposition (PVD) on plasma nitrided tool surfaces is very promising. In this work, the influence of process parameters (workpiece material, lubrication, tool design, stepwise infeed) on the tool resistance during the forming operation was analyzed experimentally. The results of the optimized forming tools were compared to conventional, unstructured, uncoated, and only plasma nitrided forming tools. The different tools were applied to 2 mm thick metal sheets made of aluminum (AlMg3) and steel (non-alloy quality steel DC04). As a result, the process forces could be reduced by a modified shape and surface of the tools. Thus, the lifetime of the tools can be enhanced.
引用
收藏
页码:1490 / 1497
页数:8
相关论文
共 18 条
[1]   Using NC-path deformation for compensating tool deflections in micromilling of hardened steel [J].
Biermann, D. ;
Krebs, E. ;
Sacharow, A. ;
Kersting, P. .
FIFTH CIRP CONFERENCE ON HIGH PERFORMANCE CUTTING 2012, 2012, 1 :132-137
[2]   Manufacturing of dies from hardened tool steels by 3-axis micromilling [J].
Biermann D. ;
Baschin A. ;
Krebs E. ;
Schlenker J. .
Production Engineering, 2011, 5 (2) :209-217
[3]   Micromilling of hardened tool steel for mould making applications [J].
Bissacco, G ;
Hansen, HN ;
De Chiffre, L .
JOURNAL OF MATERIALS PROCESSING TECHNOLOGY, 2005, 167 (2-3) :201-207
[4]   (Cr1-x,Alx)N a review about a multi-purpose coating system [J].
Bobzin, K. ;
Lugscheider, E. ;
Nickel, R. ;
Immich, P. .
MATERIALWISSENSCHAFT UND WERKSTOFFTECHNIK, 2006, 37 (10) :833-841
[5]   Multilayer coatings for improved performance [J].
Bull, SJ ;
Jones, AM .
SURFACE & COATINGS TECHNOLOGY, 1996, 78 (1-3) :173-184
[6]  
Haefer R.A., 1987, OBERFLACHEN DUNNSCHI
[7]  
Kersting P, 2012, ENGINEERING, V4/9, P532, DOI DOI 10.4236/ENG.2012.49068
[8]  
Krebs E., 2011, P ASPE 2011 SPRING T, P63
[9]   Laser assisted micro-milling of hard-to-machine materials [J].
Melkote, S. ;
Kumar, M. ;
Hashimoto, F. ;
Lahoti, G. .
CIRP ANNALS-MANUFACTURING TECHNOLOGY, 2009, 58 (01) :45-48
[10]   Bulk forming of sheet metal [J].
Merklein, M. ;
Allwood, J. M. ;
Behrens, B-A ;
Brosius, A. ;
Hagenah, H. ;
Kuzman, K. ;
Mori, K. ;
Tekkaya, A. E. ;
Weckenmann, A. .
CIRP ANNALS-MANUFACTURING TECHNOLOGY, 2012, 61 (02) :725-745