Thermomechanical coating load in dependence of fundamental coating properties

Publikation: Beitrag in FachzeitschriftKonferenzaufsatz in FachzeitschriftForschungPeer-Review

Autoren

  • S. Beblein
  • B. Breidenstein
  • B. Denkena
  • C. Pusch
  • H. Hoche
  • M. Oechsner

Externe Organisationen

  • Technische Universität Darmstadt
Forschungs-netzwerk anzeigen

Details

OriginalspracheEnglisch
Seiten (von - bis)25-30
Seitenumfang6
FachzeitschriftProcedia CIRP
Jahrgang58
PublikationsstatusVeröffentlicht - 31 Mai 2017
Veranstaltung16th CIRP Conference on Modelling of Machining Operations, CIRP CMMO 2017 - Cluny, Frankreich
Dauer: 15 Juni 201716 Juni 2017

Abstract

The conventional development of a coating system for cutting tools includes a variety of test series with elaborate experimental parameter studies. In particular, experimental investigations of the cutting behavior cause a significant consumption of cost, time and resources. In order to adapt the coating properties to the specific requirements of the cutting process, it is desirable to reduce the experimental effort of coating development by simulation of the machining process. Therefore, the main factors of the thermo-mechanical coating load in machining AISI 4140 were identified by means of 2D FEM chip formation simulations. In order to provide the required thermal and mechanical coating properties for the simulations, CrAlN-based coatings were deposited onto cutting inserts and extensively characterized. Within the simulations, the coating properties were varied between the physical and technological boundaries of CrAlN-based coatings. It was shown that the Young's modulus, the coating thickness and the friction coefficient significantly influence the thermomechanical load and the stress distribution within the coating. Finally, the cutting performance of the coated inserts was experimentally investigated and compared with the results of the simulations. Here, it was shown that delamination of the coating is particularly influenced by coating thickness.

ASJC Scopus Sachgebiete

Zitieren

Thermomechanical coating load in dependence of fundamental coating properties. / Beblein, S.; Breidenstein, B.; Denkena, B. et al.
in: Procedia CIRP, Jahrgang 58, 31.05.2017, S. 25-30.

Publikation: Beitrag in FachzeitschriftKonferenzaufsatz in FachzeitschriftForschungPeer-Review

Beblein, S, Breidenstein, B, Denkena, B, Pusch, C, Hoche, H & Oechsner, M 2017, 'Thermomechanical coating load in dependence of fundamental coating properties', Procedia CIRP, Jg. 58, S. 25-30. https://doi.org/10.1016/j.procir.2017.03.184
Beblein, S., Breidenstein, B., Denkena, B., Pusch, C., Hoche, H., & Oechsner, M. (2017). Thermomechanical coating load in dependence of fundamental coating properties. Procedia CIRP, 58, 25-30. https://doi.org/10.1016/j.procir.2017.03.184
Beblein S, Breidenstein B, Denkena B, Pusch C, Hoche H, Oechsner M. Thermomechanical coating load in dependence of fundamental coating properties. Procedia CIRP. 2017 Mai 31;58:25-30. doi: 10.1016/j.procir.2017.03.184
Beblein, S. ; Breidenstein, B. ; Denkena, B. et al. / Thermomechanical coating load in dependence of fundamental coating properties. in: Procedia CIRP. 2017 ; Jahrgang 58. S. 25-30.
Download
@article{fb56cd7184a0445bb424abe7d419de7b,
title = "Thermomechanical coating load in dependence of fundamental coating properties",
abstract = "The conventional development of a coating system for cutting tools includes a variety of test series with elaborate experimental parameter studies. In particular, experimental investigations of the cutting behavior cause a significant consumption of cost, time and resources. In order to adapt the coating properties to the specific requirements of the cutting process, it is desirable to reduce the experimental effort of coating development by simulation of the machining process. Therefore, the main factors of the thermo-mechanical coating load in machining AISI 4140 were identified by means of 2D FEM chip formation simulations. In order to provide the required thermal and mechanical coating properties for the simulations, CrAlN-based coatings were deposited onto cutting inserts and extensively characterized. Within the simulations, the coating properties were varied between the physical and technological boundaries of CrAlN-based coatings. It was shown that the Young's modulus, the coating thickness and the friction coefficient significantly influence the thermomechanical load and the stress distribution within the coating. Finally, the cutting performance of the coated inserts was experimentally investigated and compared with the results of the simulations. Here, it was shown that delamination of the coating is particularly influenced by coating thickness.",
keywords = "Chip formation simulation, Coating, Machining",
author = "S. Beblein and B. Breidenstein and B. Denkena and C. Pusch and H. Hoche and M. Oechsner",
note = "Funding information: The authors thank the German Research Foundation (DFG) for the financial support within the project “Simulationsoptimierte PVD-Beschichtungen” and the Ceratizit S.A., Luxembourg, for the cooperation.; 16th CIRP Conference on Modelling of Machining Operations, CIRP CMMO 2017 ; Conference date: 15-06-2017 Through 16-06-2017",
year = "2017",
month = may,
day = "31",
doi = "10.1016/j.procir.2017.03.184",
language = "English",
volume = "58",
pages = "25--30",

}

Download

TY - JOUR

T1 - Thermomechanical coating load in dependence of fundamental coating properties

AU - Beblein, S.

AU - Breidenstein, B.

AU - Denkena, B.

AU - Pusch, C.

AU - Hoche, H.

AU - Oechsner, M.

N1 - Funding information: The authors thank the German Research Foundation (DFG) for the financial support within the project “Simulationsoptimierte PVD-Beschichtungen” and the Ceratizit S.A., Luxembourg, for the cooperation.

PY - 2017/5/31

Y1 - 2017/5/31

N2 - The conventional development of a coating system for cutting tools includes a variety of test series with elaborate experimental parameter studies. In particular, experimental investigations of the cutting behavior cause a significant consumption of cost, time and resources. In order to adapt the coating properties to the specific requirements of the cutting process, it is desirable to reduce the experimental effort of coating development by simulation of the machining process. Therefore, the main factors of the thermo-mechanical coating load in machining AISI 4140 were identified by means of 2D FEM chip formation simulations. In order to provide the required thermal and mechanical coating properties for the simulations, CrAlN-based coatings were deposited onto cutting inserts and extensively characterized. Within the simulations, the coating properties were varied between the physical and technological boundaries of CrAlN-based coatings. It was shown that the Young's modulus, the coating thickness and the friction coefficient significantly influence the thermomechanical load and the stress distribution within the coating. Finally, the cutting performance of the coated inserts was experimentally investigated and compared with the results of the simulations. Here, it was shown that delamination of the coating is particularly influenced by coating thickness.

AB - The conventional development of a coating system for cutting tools includes a variety of test series with elaborate experimental parameter studies. In particular, experimental investigations of the cutting behavior cause a significant consumption of cost, time and resources. In order to adapt the coating properties to the specific requirements of the cutting process, it is desirable to reduce the experimental effort of coating development by simulation of the machining process. Therefore, the main factors of the thermo-mechanical coating load in machining AISI 4140 were identified by means of 2D FEM chip formation simulations. In order to provide the required thermal and mechanical coating properties for the simulations, CrAlN-based coatings were deposited onto cutting inserts and extensively characterized. Within the simulations, the coating properties were varied between the physical and technological boundaries of CrAlN-based coatings. It was shown that the Young's modulus, the coating thickness and the friction coefficient significantly influence the thermomechanical load and the stress distribution within the coating. Finally, the cutting performance of the coated inserts was experimentally investigated and compared with the results of the simulations. Here, it was shown that delamination of the coating is particularly influenced by coating thickness.

KW - Chip formation simulation

KW - Coating

KW - Machining

UR - http://www.scopus.com/inward/record.url?scp=85029768493&partnerID=8YFLogxK

U2 - 10.1016/j.procir.2017.03.184

DO - 10.1016/j.procir.2017.03.184

M3 - Conference article

AN - SCOPUS:85029768493

VL - 58

SP - 25

EP - 30

JO - Procedia CIRP

JF - Procedia CIRP

SN - 2212-8271

T2 - 16th CIRP Conference on Modelling of Machining Operations, CIRP CMMO 2017

Y2 - 15 June 2017 through 16 June 2017

ER -