Springback behavior of carbon-fiber-reinforced plastic laminates with metal cover layers in v-die bending
Research output: Contributions to collected editions/works › Article in conference proceedings › Research › peer-review
Standard
Proceedings of the ASME 11th International Manufacturing Science and Engineering Conference - 2016: Processing. Vol. 1 The American Society of Mechanical Engineers (ASME), 2016. p. V001T02A060.
Research output: Contributions to collected editions/works › Article in conference proceedings › Research › peer-review
Harvard
APA
Vancouver
Bibtex
}
RIS
TY - CHAP
T1 - Springback behavior of carbon-fiber-reinforced plastic laminates with metal cover layers in v-die bending
AU - Hahn, Marlon
AU - Weddeling, Christian
AU - Ben Khalifa, Noomane
AU - Shabaninejad, Arash
N1 - Conference code: 11
PY - 2016
Y1 - 2016
N2 - The V-die bending of a carbon-fiber reinforced thermoplastic laminate bonded to thin cover layers made of microalloyed steel was investigated. Such hybrid semi-finished products are gaining importance in transport-related lightweight designs. Experiments were conducted for different forming temperatures and dwell times to determine suitable process parameters. The punch radius was varied to evaluate its influence on the springback/negative springback of the fibermetal laminate (FML). The results, which are in good accordance with a simple analytical model, showed that the solidification of the composite core can compensate for the springback of the metal layers. Micrographs further revealed that the fiber orientation can affect the thickness distribution in the bend area.
AB - The V-die bending of a carbon-fiber reinforced thermoplastic laminate bonded to thin cover layers made of microalloyed steel was investigated. Such hybrid semi-finished products are gaining importance in transport-related lightweight designs. Experiments were conducted for different forming temperatures and dwell times to determine suitable process parameters. The punch radius was varied to evaluate its influence on the springback/negative springback of the fibermetal laminate (FML). The results, which are in good accordance with a simple analytical model, showed that the solidification of the composite core can compensate for the springback of the metal layers. Micrographs further revealed that the fiber orientation can affect the thickness distribution in the bend area.
KW - Dortmund
KW - Germany
KW - Institute of Forming Technology and Lightweight Construction
KW - TU Dortmund University
KW - Engineering
UR - http://www.scopus.com/inward/record.url?scp=84991833354&partnerID=8YFLogxK
UR - http://www.gbv.de/dms/tib-ub-hannover/880932686.pdf
U2 - 10.1115/MSEC20168532
DO - 10.1115/MSEC20168532
M3 - Article in conference proceedings
AN - SCOPUS:84991833354
VL - 1
SP - V001T02A060
BT - Proceedings of the ASME 11th International Manufacturing Science and Engineering Conference - 2016
PB - The American Society of Mechanical Engineers (ASME)
T2 - International Manufacturing Science and Engineering Conference - MSEC/ASME 2016
Y2 - 27 June 2016 through 1 July 2016
ER -