Details
Original language | English |
---|---|
Pages (from-to) | 259-265 |
Number of pages | 7 |
Journal | Procedia Manufacturing |
Volume | 21 |
Early online date | 7 Mar 2018 |
Publication status | Published - 2018 |
Event | 15th Global Conference on Sustainable Manufacturing, GCSM 2017 - Haifa, Israel Duration: 25 Sept 2017 → 27 Sept 2017 |
Abstract
Cemented carbide tools have become widely established in machining of metallic materials in recent decades. However, due to rising prices of cemented carbide and an imminent scarcity of resources, there is a growing need for an efficient recycling of worn cemented carbide tools. This article presents a novel process chain for the automatic regeneration of cemented carbide tools. The process chain contains the measurement, classification and evaluation of the worn cutting tools as well as the automatic planning and simulation of the grinding process. In comparison to conventional manufacturing of cemented carbide tools the production costs are reduced by up to 50 % and the required resources are decreased significantly.
Keywords
- cemented carbide tools, grinding, identification, measurement, path planning, regeneration process, simulation
ASJC Scopus subject areas
- Engineering(all)
- Industrial and Manufacturing Engineering
- Computer Science(all)
- Artificial Intelligence
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In: Procedia Manufacturing, Vol. 21, 2018, p. 259-265.
Research output: Contribution to journal › Conference article › Research › peer review
}
TY - JOUR
T1 - Automatic Regeneration of Cemented Carbide Tools for a Resource Efficient Tool Production
AU - Denkena, Berend
AU - Dittrich, Marc André
AU - Liu, Yanwei
AU - Theuer, Mirko
N1 - Funding information: The authors thank the Industrial Collective Research (IGF) for founding this work and the support of the Federal Ministry of Economic Affairs and Energy (BMWi) based on a resolution of the German Federal Parliament by funding e thproject atoAutic R“meegnerationofeCetedmnarCbide Tolsoorfe thProctiodnuofenwT ool”s(18062 BG/.1) Special thanks given to all project partners for their support and contributions to these results.
PY - 2018
Y1 - 2018
N2 - Cemented carbide tools have become widely established in machining of metallic materials in recent decades. However, due to rising prices of cemented carbide and an imminent scarcity of resources, there is a growing need for an efficient recycling of worn cemented carbide tools. This article presents a novel process chain for the automatic regeneration of cemented carbide tools. The process chain contains the measurement, classification and evaluation of the worn cutting tools as well as the automatic planning and simulation of the grinding process. In comparison to conventional manufacturing of cemented carbide tools the production costs are reduced by up to 50 % and the required resources are decreased significantly.
AB - Cemented carbide tools have become widely established in machining of metallic materials in recent decades. However, due to rising prices of cemented carbide and an imminent scarcity of resources, there is a growing need for an efficient recycling of worn cemented carbide tools. This article presents a novel process chain for the automatic regeneration of cemented carbide tools. The process chain contains the measurement, classification and evaluation of the worn cutting tools as well as the automatic planning and simulation of the grinding process. In comparison to conventional manufacturing of cemented carbide tools the production costs are reduced by up to 50 % and the required resources are decreased significantly.
KW - cemented carbide tools
KW - grinding
KW - identification
KW - measurement
KW - path planning
KW - regeneration process
KW - simulation
UR - http://www.scopus.com/inward/record.url?scp=85049200646&partnerID=8YFLogxK
U2 - 10.1016/j.promfg.2018.02.119
DO - 10.1016/j.promfg.2018.02.119
M3 - Conference article
AN - SCOPUS:85049200646
VL - 21
SP - 259
EP - 265
JO - Procedia Manufacturing
JF - Procedia Manufacturing
T2 - 15th Global Conference on Sustainable Manufacturing, GCSM 2017
Y2 - 25 September 2017 through 27 September 2017
ER -