Inverse determination of constitutive equations and cutting force modelling for complex tools using oxley's predictive machining theory

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Denkena, B.; Grove, T.; Dittrich, M.A.; Niederwestberg, D.; Lahres, M.: Inverse determination of constitutive equations and cutting force modelling for complex tools using oxley's predictive machining theory. In: Procedia CIRP 31 (2015), S. 405-410. DOI: https://doi.org/10.1016/j.procir.2015.03.012

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Sum total of downloads: 268




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Abstract: 
In analysis of machining processes, finite element analysis is widely used to predict forces, stress distributions, temperatures and chip formation. However, constitutive models are not always available and simulation of cutting processes with complex tool geometries can lead to extensive computation time. This article presents an approach to determine constitutive parameters of the Johnson-Cook's flow stress model by inverse modelling as well as a methodology to predict process forces and temperatures for complex three-dimensional tools using Oxley's machining theory. In the first part of this study, an analytically based computer code combined with a particle swarm optimization (PSO) algorithm is used to identify constitutive models for 70MnVS4 and an aluminium-alloyed ultra-high-carbon steel (UHC-steel) from orthogonal milling experiments. In the second part, Oxley's predictive machining theory is coupled with a multi-dexel based material removal model. Contact zone information (width of cut, undeformed chip thickness, rake angle and cutting speed) are calculated for incremental segments on the cutting edge and used as input parameters for force and temperature calculations. Subsequently, process forces are predicted for machining using the inverse determined constitutive models and compared to actual force measurements. The suggested methodology has advantages regarding the computation time compared to finite element analyses.
License of this version: CC BY-NC-ND 4.0 Unported
Document Type: Article
Publishing status: publishedVersion
Issue Date: 2015
Appears in Collections:Fakultät für Maschinenbau

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pos. country downloads
total perc.
1 image of flag of Germany Germany 167 62.31%
2 image of flag of United States United States 31 11.57%
3 image of flag of China China 16 5.97%
4 image of flag of France France 9 3.36%
5 image of flag of India India 8 2.99%
6 image of flag of Russian Federation Russian Federation 6 2.24%
7 image of flag of Canada Canada 6 2.24%
8 image of flag of No geo information available No geo information available 5 1.87%
9 image of flag of Turkey Turkey 3 1.12%
10 image of flag of Indonesia Indonesia 3 1.12%
    other countries 14 5.22%

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