COMPOSITE METAL ALLOY-BASED CUTTING TOOL FOR HÖRLLER INDUSTRIAL PAPER CUTTING
Resumo
The Hörller industrial paper cutting requires tools of high precision and durability to meet the needs of the printing and packaging industry. This article covers the development of an innovative cutting tool based on a composite metal alloy, designed to address the specific challenges of this process. The main objective of this study is to design and manufacture a cutting tool that is able to meet the demands of industrial paper cutting type Hörller, providing high efficiency, quality and extended service life. The development process of the cutting tool involved the precise definition of the geometry, the careful selection of the composite alloy material, the application of heat treatment and specialized sharpening techniques. Detailed tests were conducted to evaluate the tool's performance under industrial conditions. The results demonstrate that the cutting tool based on the composite metal alloy provides a remarkable efficiency in the cutting of Hörller-type paper, significantly surpassing conventional alternatives. In addition, its durability has been proven in long periods of industrial operation, minimizing the need for maintenance. This study contributes to the advancement of industrial cutting tool technology, offering a robust and effective solution for Hörller-type paper cutting. The developed tool represents a milestone in the optimization of the cutting process, promoting greater productivity and quality in the printing and packaging industry.
Biografia do Autor
Instituto Conecthus - Tecnologia e Biotecnologia do Amazonas
Instituto Conecthus - Tecnologia e Biotecnologia do Amazonas.
Instituto Conecthus - Tecnologia e Biotecnologia do Amazonas.
Instituto Conecthus - Tecnologia e Biotecnologia do Amazonas.
Referências
AFIGRAF (2023). Tipos de ferramentas de corte. http://www.afigraf
com.br/produtos.html.
CHANG, S.-L., TSENG, H.-C., HSIEH, J.-K. et al. (2009). Optimum de-
sign of a cutting tool for manufacturing rotary knives. Proceedings
of the Institution of Mechanical Engineers, Part C: Journal of Me-
chanical Engineering Science, 223(2), 463–472. URL:https://doi
org/10.1243/09544062JMES882. href="https://doi.org/10.1243/09544062JMES882">https://doi.org/10.1243/09544062JMES882 DOI: https://doi.org/10.1243/09544062JMES882.arXiv:<a
CHUENYINDEE, T., PRASETYO, Y., & SRISUWAN, P. (2021). Cutting Tool Quality Improvement: A Case Study of Electronic Parts Manufacturer. In [Conference Name] (pp. 315-320) DOI: https://doi.org/10.1145/3494583.3494584
GÜRGEN, S., & SOFUOĞLU, M. A. (2020). Integration of shear thickening fluid into cutting tools for improved turning operations. Journal of Manufacturing Processes, 56, 1146–1154. DOI: http://dx.doi.org/10.1016/j.jmapro.2020.06.012
HORLLE (2017). Diferenças entre o papel cartão cinza e o
papel cartão paraná. https://blog.horlle.com.br/
diferencas-do-papel-cinza-e-o-parana/.
HUANG, Y., Lu, Z., DAI, W., ZHANG, W., & WANG, B. (2021). Remaining Useful Life Prediction of Cutting Tools Using an Inverse Gaussian Process Model. Applied Sciences, 11(11), 5011. Available at: https://www.mdpi.com/2076-3417/11/11/5011 DOI: https://doi.org/10.3390/app11115011
KITAGAWA, T.; KUBO, A.; MAEKAWA, K. Temperature and wear of cutting tools in high-speed machining of Inconel 718 and Ti 6Al 6V 2Sn. wear, v. 202, n. 2, p. 142-148, 1997.
KO, Young Mok; KWON, Won Tae; KIM, Young-Wook. Development of Al2O3–SiC composite tool for machining application. Ceramics international, v. 30, n. 8, p. 2081-2086, 2004.
MASON, A., ROMANOV, D., CORDOVA-LOPEZ, L. E. et al. (2022). Smart knife:
technological advances towards smart cutting tools in meat industry
automation. Sensor Review, . URL: https://www.emerald.com/
insight/content/doi/10.1108/SR-09-2021-0315/full/html. Access.Articlepublicationdate: 5 January 2022publication date: 13 January 2022 DOI: https://doi.org/10.1108/SR-09-2021-0315.Open
MiolodeAgenda (2023). Utilização do papel parana. https://miolodeagenda.com.br/produto/
papel-parana-1-7-mm-a5-15x21-cm-pct-10-ou-100-folhas/.
SANTOS, F. I. R. (2023). Tudo sobre facas circulares. https://rosasantos
com.br/facas-circulares.php.
WHITNEY, E. Dow. Ceramic cutting tools: materials, development and performance. William Andrew, 2012.
ZHAO, J., LIU, Z., WANG, B., Hu, J., & WAN, Y. (2021). Tool coating effects on cutting temperature during metal cutting processes: Comprehensive review and future research directions. Mechanical Systems and Signal Processing, 150, 107302. DOI: http://dx.doi.org/10.1016/j.ymssp.2020.107302
