Publicado

2018-10-01

System of cutting force data acquisition in mechanical lathes

Sistema de adquisición de datos de la fuerza de corte en tornos mecánicos

DOI:

https://doi.org/10.15446/dyna.v85n207.67537

Palabras clave:

machining force, machining, data acquisition, depth of cut (en)
fuerza mecánica, mecanizado, adquisición de datos, profundidad del corte (es)

Autores/as

This report concerns a data acquisition system with the final idea of measuring the cutting force in the threading process done on a conventional lathe. Analytical models are used to find the depth of cut of the machining tool. This is important because the machining force can be responsible for the tool collapse by plastic edge deformation. The cutting force was obtained through direct measurements in selected samples. This allows obtaining more realistic data compared with data obtained by analytical estimation from theory. The data acquisition system was implemented in LabView®, and it allowed analyzing the several variables involved in the machining process on conventional lathes. In such a way, it is possible to find out, in real time, the depth of cut variable. Specifically, the authors present results obtained from analysis of Fredericks, Sandvik and Lira models. This analysis allows drawing conclusions about the cutting force from each model.
Este artículo presenta un sistema de adquisición de datos para medir la fuerza de corte en el proceso de roscado hecho en un torno convencional. São usados modelos analíticos para encontrar la profundidad del corte de la herramienta de fabricación. La fuerza de la herramienta de corte puede ser responsable por el colapso de la herramienta debido a la deformación plástica de la arista. La fuerza de corte fue obtenida a través de medidas directas en muestras seleccionadas permitiendo obtener datos confiables comparados con datos obtenidos del análisis teórico. El sistema fue implementado en LabView® analizando diversas variables que entran en juego en el proceso de manufactura en tornos convencionales. Es posible así encontrar en tiempo real la profundidad del corte. Específicamente, los autores presentan resultados usando los modelos de Fredericks, Sandvik y Lira. El análisis permite obtener conclusiones sobre la fuerza de corte de cada modelo.

Referencias

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Cómo citar

IEEE

[1]
F. S. Martins, R. Reina-Muñoz, y V. M. Lira, «System of cutting force data acquisition in mechanical lathes», DYNA, vol. 85, n.º 207, pp. 16–21, oct. 2018.

ACM

[1]
Martins, F.S., Reina-Muñoz, R. y Lira, V.M. 2018. System of cutting force data acquisition in mechanical lathes. DYNA. 85, 207 (oct. 2018), 16–21. DOI:https://doi.org/10.15446/dyna.v85n207.67537.

ACS

(1)
Martins, F. S.; Reina-Muñoz, R.; Lira, V. M. System of cutting force data acquisition in mechanical lathes. DYNA 2018, 85, 16-21.

APA

Martins, F. S., Reina-Muñoz, R. & Lira, V. M. (2018). System of cutting force data acquisition in mechanical lathes. DYNA, 85(207), 16–21. https://doi.org/10.15446/dyna.v85n207.67537

ABNT

MARTINS, F. S.; REINA-MUÑOZ, R.; LIRA, V. M. System of cutting force data acquisition in mechanical lathes. DYNA, [S. l.], v. 85, n. 207, p. 16–21, 2018. DOI: 10.15446/dyna.v85n207.67537. Disponível em: https://revistas.unal.edu.co/index.php/dyna/article/view/67537. Acesso em: 22 mar. 2026.

Chicago

Martins, Felipe Sineider, Rodrigo Reina-Muñoz, y Valdemir Martins Lira. 2018. «System of cutting force data acquisition in mechanical lathes». DYNA 85 (207):16-21. https://doi.org/10.15446/dyna.v85n207.67537.

Harvard

Martins, F. S., Reina-Muñoz, R. y Lira, V. M. (2018) «System of cutting force data acquisition in mechanical lathes», DYNA, 85(207), pp. 16–21. doi: 10.15446/dyna.v85n207.67537.

MLA

Martins, F. S., R. Reina-Muñoz, y V. M. Lira. «System of cutting force data acquisition in mechanical lathes». DYNA, vol. 85, n.º 207, octubre de 2018, pp. 16-21, doi:10.15446/dyna.v85n207.67537.

Turabian

Martins, Felipe Sineider, Rodrigo Reina-Muñoz, y Valdemir Martins Lira. «System of cutting force data acquisition in mechanical lathes». DYNA 85, no. 207 (octubre 1, 2018): 16–21. Accedido marzo 22, 2026. https://revistas.unal.edu.co/index.php/dyna/article/view/67537.

Vancouver

1.
Martins FS, Reina-Muñoz R, Lira VM. System of cutting force data acquisition in mechanical lathes. DYNA [Internet]. 1 de octubre de 2018 [citado 22 de marzo de 2026];85(207):16-21. Disponible en: https://revistas.unal.edu.co/index.php/dyna/article/view/67537

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CrossRef Cited-by

CrossRef citations2

1. V. Panchuk, O. Onysko, K. Kotwica, C. Barz, L. Borushchak. (2021). Prediction of the Accuracy of the Tapered Thread Profile. Journal of Engineering Sciences, 8(2) https://doi.org/10.21272/jes.2021.8(2).b1.

2. Taizhi Lv, Juan Zhang, Yong Chen. (2020). The Research on Data Acquisition and Analysis Platform for Lathe Machine based on Stream Computing. Journal of Physics: Conference Series, 1650(3), p.032060. https://doi.org/10.1088/1742-6596/1650/3/032060.

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