Izenburua
Development and experimental validation of a macroscopic analytical model aiming to generate metal-FRP stacks drilling cutting force and torqueEgilea
Beste instituzio
Université de Mons (Bélgica)Bertsioa
Bertsio argitaratua
Eskubideak
© 2021 The authorsSarbidea
Sarbide irekiaArgitaratzailearen bertsioa
https://doi.org/10.25518/esaform21.2373Non argitaratua
ESAFORM Proceedings N. artículo, 2373, 2021Gako-hitzak
Drilling
Macroscopic
Model
Cutting forces ... [+]
Macroscopic
Model
Cutting forces ... [+]
Drilling
Macroscopic
Model
Cutting forces
Stacks
Fiber Reinforced Plastics
Metal [-]
Macroscopic
Model
Cutting forces
Stacks
Fiber Reinforced Plastics
Metal [-]
Laburpena
Composites materials and especially FRP are increasingly employed in many fields of applications (transport, aerospace, …) due to the current trend of improving global energy performances of new desig ... [+]
Composites materials and especially FRP are increasingly employed in many fields of applications (transport, aerospace, …) due to the current trend of improving global energy performances of new designs notably by mass saving. However the use of metallic materials such as aluminum and titanium alloys is still necessary in many cases and a lot of structures are made of a dual technology called stacks (panels composed of different layers of FRP and metal bounded together). Combining the different properties of these materials offers many advantages regarding the mechanical and structural aspects. This is nevertheless for the same reason that machining and especially drilling stacks is a laborious task: the tools and cutting conditions are way too divergent to avoid vibrations, problems of dimensional tolerances and delamination of the composite. The knowledge and characterization of the drilling cutting forces is a first step to solve these issues. The purpose of this article is to provide an accurate macroscopic analytical model fitted for stacks and compare it quantitatively with experimental tests. The given model is divided in two parts (i.e. respectively adapted for the two materials) and is based on the discretization of the cutting edge. The proposed algorithm is able to predict accurately drilling force and torque along time in function of the cutting conditions, the tool and material configurations. A reverse least squared method is used to obtain the empirical input parameters, allowing to minimize the number of experimental drilling tests to obtain the empirical input parameters. [-]
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