Basic study on the process combination of deposition welding and subsequent hot bulk forming

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Autoren

  • Bernd Arno Behrens
  • Ludger Overmeyer
  • Alexander Barroi
  • Conrad Frischkorn
  • Jörg Hermsdorf
  • Stefan Kaierle
  • Malte Stonis
  • Adis Huskic

Externe Organisationen

  • Laser Zentrum Hannover e.V. (LZH)
  • Institut für integrierte Produktion Hannover (IPH) gGmbH
Forschungs-netzwerk anzeigen

Details

OriginalspracheEnglisch
Seiten (von - bis)585-591
Seitenumfang7
FachzeitschriftProduction Engineering
Jahrgang7
Ausgabenummer6
PublikationsstatusVeröffentlicht - 18 Mai 2013

Abstract

Today most technical parts and components are made of monolithic materials. Nevertheless, the previously used monolithic materials reach their technological and constructive limits, so that an improvement of the component properties can be realized by hybrid parts. Forging of previously joined semi-finished products to net shape hybrid components is a promising method to produce functional adapted parts in a few process steps. This new process chain offers a number of advantages compared to other manufacturing technologies. Examples are the production of specific load-adapted forging parts with a high level of material utilization, an improvement of the joining zone caused by the followed forming process and an easy to implement joining process because of the simple geometries of the semi-finished products. This paper describes the production process of hybrid steel parts, which are produced by a combination of a deposition welding process with a subsequent hot forging (upsetting) or cross-wedge-rolling. It could be shown that the innovative process chain enables the production of hybrid parts whereby the forging processes lead to an improvement of the mechanical properties of the laser deposited material.

ASJC Scopus Sachgebiete

Zitieren

Basic study on the process combination of deposition welding and subsequent hot bulk forming. / Behrens, Bernd Arno; Overmeyer, Ludger; Barroi, Alexander et al.
in: Production Engineering, Jahrgang 7, Nr. 6, 18.05.2013, S. 585-591.

Publikation: Beitrag in FachzeitschriftArtikelForschungPeer-Review

Behrens, BA, Overmeyer, L, Barroi, A, Frischkorn, C, Hermsdorf, J, Kaierle, S, Stonis, M & Huskic, A 2013, 'Basic study on the process combination of deposition welding and subsequent hot bulk forming', Production Engineering, Jg. 7, Nr. 6, S. 585-591. https://doi.org/10.1007/s11740-013-0478-y
Behrens, B. A., Overmeyer, L., Barroi, A., Frischkorn, C., Hermsdorf, J., Kaierle, S., Stonis, M., & Huskic, A. (2013). Basic study on the process combination of deposition welding and subsequent hot bulk forming. Production Engineering, 7(6), 585-591. https://doi.org/10.1007/s11740-013-0478-y
Behrens BA, Overmeyer L, Barroi A, Frischkorn C, Hermsdorf J, Kaierle S et al. Basic study on the process combination of deposition welding and subsequent hot bulk forming. Production Engineering. 2013 Mai 18;7(6):585-591. doi: 10.1007/s11740-013-0478-y
Behrens, Bernd Arno ; Overmeyer, Ludger ; Barroi, Alexander et al. / Basic study on the process combination of deposition welding and subsequent hot bulk forming. in: Production Engineering. 2013 ; Jahrgang 7, Nr. 6. S. 585-591.
Download
@article{4800a94a6d6a4daa8abe10427e7c2879,
title = "Basic study on the process combination of deposition welding and subsequent hot bulk forming",
abstract = "Today most technical parts and components are made of monolithic materials. Nevertheless, the previously used monolithic materials reach their technological and constructive limits, so that an improvement of the component properties can be realized by hybrid parts. Forging of previously joined semi-finished products to net shape hybrid components is a promising method to produce functional adapted parts in a few process steps. This new process chain offers a number of advantages compared to other manufacturing technologies. Examples are the production of specific load-adapted forging parts with a high level of material utilization, an improvement of the joining zone caused by the followed forming process and an easy to implement joining process because of the simple geometries of the semi-finished products. This paper describes the production process of hybrid steel parts, which are produced by a combination of a deposition welding process with a subsequent hot forging (upsetting) or cross-wedge-rolling. It could be shown that the innovative process chain enables the production of hybrid parts whereby the forging processes lead to an improvement of the mechanical properties of the laser deposited material.",
keywords = "Cross-wedge-rolling, Deposition welding, Hot forging, Process chain",
author = "Behrens, {Bernd Arno} and Ludger Overmeyer and Alexander Barroi and Conrad Frischkorn and J{\"o}rg Hermsdorf and Stefan Kaierle and Malte Stonis and Adis Huskic",
year = "2013",
month = may,
day = "18",
doi = "10.1007/s11740-013-0478-y",
language = "English",
volume = "7",
pages = "585--591",
number = "6",

}

Download

TY - JOUR

T1 - Basic study on the process combination of deposition welding and subsequent hot bulk forming

AU - Behrens, Bernd Arno

AU - Overmeyer, Ludger

AU - Barroi, Alexander

AU - Frischkorn, Conrad

AU - Hermsdorf, Jörg

AU - Kaierle, Stefan

AU - Stonis, Malte

AU - Huskic, Adis

PY - 2013/5/18

Y1 - 2013/5/18

N2 - Today most technical parts and components are made of monolithic materials. Nevertheless, the previously used monolithic materials reach their technological and constructive limits, so that an improvement of the component properties can be realized by hybrid parts. Forging of previously joined semi-finished products to net shape hybrid components is a promising method to produce functional adapted parts in a few process steps. This new process chain offers a number of advantages compared to other manufacturing technologies. Examples are the production of specific load-adapted forging parts with a high level of material utilization, an improvement of the joining zone caused by the followed forming process and an easy to implement joining process because of the simple geometries of the semi-finished products. This paper describes the production process of hybrid steel parts, which are produced by a combination of a deposition welding process with a subsequent hot forging (upsetting) or cross-wedge-rolling. It could be shown that the innovative process chain enables the production of hybrid parts whereby the forging processes lead to an improvement of the mechanical properties of the laser deposited material.

AB - Today most technical parts and components are made of monolithic materials. Nevertheless, the previously used monolithic materials reach their technological and constructive limits, so that an improvement of the component properties can be realized by hybrid parts. Forging of previously joined semi-finished products to net shape hybrid components is a promising method to produce functional adapted parts in a few process steps. This new process chain offers a number of advantages compared to other manufacturing technologies. Examples are the production of specific load-adapted forging parts with a high level of material utilization, an improvement of the joining zone caused by the followed forming process and an easy to implement joining process because of the simple geometries of the semi-finished products. This paper describes the production process of hybrid steel parts, which are produced by a combination of a deposition welding process with a subsequent hot forging (upsetting) or cross-wedge-rolling. It could be shown that the innovative process chain enables the production of hybrid parts whereby the forging processes lead to an improvement of the mechanical properties of the laser deposited material.

KW - Cross-wedge-rolling

KW - Deposition welding

KW - Hot forging

KW - Process chain

UR - http://www.scopus.com/inward/record.url?scp=84884905382&partnerID=8YFLogxK

U2 - 10.1007/s11740-013-0478-y

DO - 10.1007/s11740-013-0478-y

M3 - Article

AN - SCOPUS:84884905382

VL - 7

SP - 585

EP - 591

JO - Production Engineering

JF - Production Engineering

SN - 0944-6524

IS - 6

ER -