Simulation-based surface roughness modelling in end milling

Publikation: Beitrag in FachzeitschriftKonferenzaufsatz in FachzeitschriftForschungPeer-Review

Autorschaft

  • Berend Denkena
  • Marc André Dittrich
  • Julia Huuk
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Details

OriginalspracheEnglisch
Seiten (von - bis)151-156
Seitenumfang6
FachzeitschriftProcedia CIRP
Jahrgang99
Frühes Online-Datum3 Mai 2021
PublikationsstatusVeröffentlicht - 2021
Veranstaltung14th CIRP Conference on Intelligent Computation in Manufacturing Engineering, CIRP ICME 2020 - Naples, Italien
Dauer: 15 Juli 202017 Juli 2020

Abstract

The surface topography often is an important quality criterion for the manufacturing of milled workpieces as it often defines their functional behaviour. In machining both, the kinematics of the process and the stochastic influences deriving from the machine tool, workpiece and the surrounding environment affect the workpiece's surface roughness. This paper presents a simulation-based method for flank milling, which considers kinematic and stochastic influences including run-out errors and tooth length variations. The simulation results are used in combination to predict the surface roughness depending on the chosen process parameters. Hence, also making in possible to choose appropriate process parameters to achieve a defined surface roughness.

ASJC Scopus Sachgebiete

Zitieren

Simulation-based surface roughness modelling in end milling. / Denkena, Berend; Dittrich, Marc André; Huuk, Julia.
in: Procedia CIRP, Jahrgang 99, 2021, S. 151-156.

Publikation: Beitrag in FachzeitschriftKonferenzaufsatz in FachzeitschriftForschungPeer-Review

Denkena, B, Dittrich, MA & Huuk, J 2021, 'Simulation-based surface roughness modelling in end milling', Procedia CIRP, Jg. 99, S. 151-156. https://doi.org/10.1016/j.procir.2021.03.096
Denkena, B., Dittrich, M. A., & Huuk, J. (2021). Simulation-based surface roughness modelling in end milling. Procedia CIRP, 99, 151-156. https://doi.org/10.1016/j.procir.2021.03.096
Denkena B, Dittrich MA, Huuk J. Simulation-based surface roughness modelling in end milling. Procedia CIRP. 2021;99:151-156. Epub 2021 Mai 3. doi: 10.1016/j.procir.2021.03.096
Denkena, Berend ; Dittrich, Marc André ; Huuk, Julia. / Simulation-based surface roughness modelling in end milling. in: Procedia CIRP. 2021 ; Jahrgang 99. S. 151-156.
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Download

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T1 - Simulation-based surface roughness modelling in end milling

AU - Denkena, Berend

AU - Dittrich, Marc André

AU - Huuk, Julia

N1 - Funding Information: The authors thank the German Federation of Industrial Research Associations (AiF) for the financial support within the research project Technological CAD/CAM (19884_N).

PY - 2021

Y1 - 2021

N2 - The surface topography often is an important quality criterion for the manufacturing of milled workpieces as it often defines their functional behaviour. In machining both, the kinematics of the process and the stochastic influences deriving from the machine tool, workpiece and the surrounding environment affect the workpiece's surface roughness. This paper presents a simulation-based method for flank milling, which considers kinematic and stochastic influences including run-out errors and tooth length variations. The simulation results are used in combination to predict the surface roughness depending on the chosen process parameters. Hence, also making in possible to choose appropriate process parameters to achieve a defined surface roughness.

AB - The surface topography often is an important quality criterion for the manufacturing of milled workpieces as it often defines their functional behaviour. In machining both, the kinematics of the process and the stochastic influences deriving from the machine tool, workpiece and the surrounding environment affect the workpiece's surface roughness. This paper presents a simulation-based method for flank milling, which considers kinematic and stochastic influences including run-out errors and tooth length variations. The simulation results are used in combination to predict the surface roughness depending on the chosen process parameters. Hence, also making in possible to choose appropriate process parameters to achieve a defined surface roughness.

KW - End milling

KW - Roughness

KW - Simulation

KW - Topography

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EP - 156

JO - Procedia CIRP

JF - Procedia CIRP

SN - 2212-8271

T2 - 14th CIRP Conference on Intelligent Computation in Manufacturing Engineering, CIRP ICME 2020

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