Pilot Demonstration of Hot Sheet Metal Forming Using 3D Printed Dies

被引:9
|
作者
Pujante, Jaume [1 ]
Gonzalez, Borja [2 ]
Garcia-Llamas, Eduard [1 ]
机构
[1] Eurecat, Ctr Tecnol Catalunya, Unit Metall & Ceram Mat, Placa Ciencia 2, Manresa 08243, Spain
[2] Gestamp, Autotech Engn Spain SL, Poligono Ind Ca NEstella, Carrer Edison 4, St Esteve Sesrovires 08635, Spain
关键词
3D printing; additive manufacturing; cooling; press hardening; tooling; TOOL STEEL; WEAR;
D O I
10.3390/ma14195695
中图分类号
O64 [物理化学(理论化学)、化学物理学];
学科分类号
070304 ; 081704 ;
摘要
Since the popularization of press hardening in the early noughties, die and tooling systems have experienced considerable advances, with tool refrigeration as an important focus. However, it is still complicated to obtain homogeneous cooling and avoid hot spot issues in complex geometries. Additive Manufacturing allows designing cavities inside the material volume with little limitation in terms of channel intersection or bore entering and exit points. In this sense, this technology is a natural fit for obtaining surface-conforming cooling channels: an attractive prospect for refrigerated tools. This work describes a pilot experience in 3D-printed press hardening tools, comparing the performance of additive manufactured Maraging steel 1.2709 to conventional wrought hot work tool steel H13 on two different metrics: durability and thermal performance. For the first, wear studies were performed in a controlled pilot plant environment after 800 hot stamping strokes in an omega tool configuration. On the second, a demonstrator tool based on a commercial tool with hot spot issues, was produced by 3D printing including surface-conformal cooling channels. This tool was then used in a pilot press hardening line, in which tool temperature was analyzed and compared to an equivalent tool produced by conventional means. Results show that the Additive Manufacturing technologies can be successfully applied to the production of press hardening dies, particularly in intricate geometries where new cooling channel design strategies offer a solution for hot spots and inhomogeneous thermal loads.
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页数:14
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