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Integral Design and Manufacturing Methodology of a Reduced-Scale Servo Press.pdf (2.946Mb)
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Izenburua
Integral Design and Manufacturing Methodology of a Reduced-Scale Servo Press
Egilea
Olaizola, Jon
Esteban Echeverria, Ekaitz
Trinidad Naranjo, Javier
Iturrospe, Aitzol
GALDOS, Lander
Abete, J.M.
Sáenz de Argandoña, Eneko
Ikerketa taldea
Acústica y vibraciones
Teoría de la señal y comunicaciones
Bertsioa
Postprinta
Eskubideak
© 2021 IEEE
Sarbidea
Sarbide irekia
URI
https://hdl.handle.net/20.500.11984/6394
Argitaratzailearen bertsioa
https://doi.org/10.1109/TMECH.2020.3039678
Non argitaratua
IEEE/ASME Transactions on Mechatronics  Vol. 26. N. 5. Pp. 2418-2428, 2021
Argitaratzailea
IEEE
Gako-hitzak
Test bench
Kinematic and dynamic scaling
Optimization
Activity analysis ... [+]
Test bench
Kinematic and dynamic scaling
Optimization
Activity analysis
Servo press
Electromechanics [-]
Laburpena
In a context where industrial production boosts both the society and the economy of a country, improvements in industrial processes are key factors for efficient and reliable development of goods and ... [+]
In a context where industrial production boosts both the society and the economy of a country, improvements in industrial processes are key factors for efficient and reliable development of goods and products. New industrial processes and machines must be evaluated before deployment at large production scales. This article proposes a new optimized design and manufacturing methodology to develop scaled test benches under predefined design requirements and constraints. The main contribution of this article is the integral scaling methodology based on an optimized dimensional analysis and a similitude metric that eases the design of a test bench. Thus, the search for the optimal physical magnitudes of the test bench is accelerated, and the inability to design nonproportional components is solved avoiding distortion. The first step of the methodology is definition of scaling laws through the Buckingham's π theorem. The second step is to employ a constrained optimization to determine the physical magnitudes of the test bench, based on the scaling laws defined earlier. The third step is to calculate the parameter activities and to set the design tolerances of the scaled components, so that the components are designed more freely while dealing with nonproportional ratios obtained due to arbitrary constraints. The methodology was used to construct a test bench of a servo press that retains the kinematics and dynamics of an industrial servo press. Experimental assessment of the dynamic and kinematic similitudes showed a less than 5% deviation from the industrial servo press's force/angular position ratio. [-]
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