Por favor, use este identificador para citar o enlazar este ítem:
https://repositoriodspace.unipamplona.edu.co/jspui/handle/20.500.12744/11059Registro completo de metadatos
| Campo DC | Valor | Lengua/Idioma |
|---|---|---|
| dc.contributor.author | Vargas Pérez, María José. | - |
| dc.date.accessioned | 2026-09-21T16:56:06Z | - |
| dc.date.available | 2022 | - |
| dc.date.available | 2026-09-21T16:56:06Z | - |
| dc.date.issued | 2022 | - |
| dc.identifier.citation | Vargas Pérez, M. J. (2022). Validación de las propiedades mecánicas por ensayo de tensión del acero 17-4 PH [Trabajo de Grado Pregrado, Universidad de Pamplona]. Repositorio Hulago Universidad de Pamplona. https://repositoriodspace.unipamplona.edu.co/jspui/handle/20.500.12744/11059 | es_CO |
| dc.identifier.uri | https://repositoriodspace.unipamplona.edu.co/jspui/handle/20.500.12744/11059 | - |
| dc.description | En el siguiente artículo se realizó una validación de la parte experimental y simulación de las propiedades mecánicas como es el módulo de elasticidad, límite de elasticidad y esfuerzo último del acero inoxidable 17-4 endurecido por precipitado; esta investigación se hizo con el fin de comprobar, si las simulaciones se pueden aplicar a la manufactura aditiva de metales, con el fin de disminuir tiempo y costos de la técnica fusión por cama de polvos. Primero se fabricaron seis probetas variando el espesor y el ángulo de fabricación, para posteriormente realizar ensayos de tensión, obteniendo el modulo y límite de elasticidad; luego, de realizado los ensayos experimentales se procedió a hacer las simulaciones lo más reales posibles, para comparar la gráfica de esfuerzo – deformación obtenida por ambos procesos. Se obtuvo como resultado que solo un ensayo tuvo la pendiente del módulo semejante en la validación, pero las demás no; por lo tanto, se deben realizar otras investigaciones para comprobar si el modelo empleado cumple para simulaciones de manufactura aditiva. | es_CO |
| dc.description.abstract | In the following article, a validation of the experimental part and simulation of the mechanical properties such as the modulus of elasticity, elastic limit and ultimate stress of 17-4 stainless steel hardened by precipitation was carried out; This investigation was carried out in order to verify if the simulations can be applied to the additive manufacturing of metals, in order to reduce time and costs of the powder bed fusion technique. First, six test tubes were manufactured, varying the thickness and manufacturing angle, to later carry out tensile tests, obtaining the modulus and limit of elasticity; then, after carrying out the experimental tests, the simulations were made as realistic as possible, in order to compare the stress-strain graph obtained by both processes. It was obtained as a result that only one trial had the slope of the similar module in the validation, but the others did not; therefore, other investigations should be carried out to verify if the model used is compliant for additive manufacturing simulations. | es_CO |
| dc.format.extent | 157 | es_CO |
| dc.format.mimetype | application/pdf | es_CO |
| dc.language.iso | es | es_CO |
| dc.publisher | Universidad de Pamplona - Facultad de Ingenierías y Arquitectura. | es_CO |
| dc.subject | Manufactura aditiva. | es_CO |
| dc.subject | Ensayo de tensión. | es_CO |
| dc.subject | Simulación. | es_CO |
| dc.title | Validación de las propiedades mecánicas por ensayo de tensión del acero 17-4 PH. | es_CO |
| dc.type | http://purl.org/coar/resource_type/c_7a1f | es_CO |
| dc.date.accepted | 2022 | - |
| dc.relation.references | Ansys. (2021). Additive User’s Guide ( Print and Science ). January. https://storage.ansys.com/mbuassets/additive/Calibration/202/ANSYS_Additive_Calibration_Guide_2020_R2 .pdf. | es_CO |
| dc.relation.references | Bihr, M., Allaire, G., Betbeder-Lauque, X., Bogosel, B., Bordeu, F., & Querois, J. (2022). Part and supports optimization in metal powder bed additive manufacturing using simplified process simulation. Computer Methods in Applied Mechanics and Engineering, 395, 114975. https://doi.org/10.1016/j.cma.2022.114975. | es_CO |
| dc.relation.references | Čapek, J., Polatidis, E., Casati, N., Pederson, R., Lyphout, C., & Strobl, M. (2022). Influence of laser powder bed fusion scanning pattern on residual stress and microstructure of alloy 718. Materials and Design, 221. https://doi.org/10.1016/j.matdes.2022.110983. | es_CO |
| dc.relation.references | Cardeal, G., Sequeira, D., Mendonça, J., Leite, M., & Ribeiro, I. (2021a). Additive manufacturing in the process industry: A process-based cost model to study life cycle cost and the viability of additive manufacturing spare parts. Procedia CIRP, 98, 211 –216. https://doi.org/10.1016/J.PROCIR.2021.01.032. | es_CO |
| dc.relation.references | Cardeal, G., Sequeira, D., Mendonça, J., Leite, M., & Ribeiro, I. (2021b). Additive manufacturing in the process industry: A process-based cost model to study life cycle cost and the viability of additive manufacturing spare parts. Procedia CIRP, 98, 211 –216. https://doi.org/10.1016/j.procir.2021.01.032. | es_CO |
| dc.relation.references | Composition, C. (n.d.). Fe 55,847. | es_CO |
| dc.relation.references | De Ciurana, J., Serenó, L., & Vallès, È. (2013). Selecting process parameters in RepRap additive manufacturing system for PLA scaffolds manufacture. Procedia CIRP, 5, 152–157. https://doi.org/10.1016/J.PROCIR.2013.01.031. | es_CO |
| dc.relation.references | du Plessis, A., Razavi, S. M. J., Benedetti, M., Murchio, S., Leary, M., Watson, M., Bhate, D., & Berto, F. (2022). Properties and applications of additively manufactured metallic cellular materials: A review. Progress in Materials Science, 125(December 2021), 100918. https://doi.org/10.1016/j.pmatsci.2021.100918. | es_CO |
| dc.relation.references | Eskandari, H., Lashgari, H. R., Ye, L., Eizadjou, M., & Wang, H. (2022). Microstructural characterization and mechanical properties of additively manufactured 17–4PH stainless steel. Materials Today Communications, 30(December 2021). https://doi.org/10.1016/j.mtcomm.2021.103075. | es_CO |
| dc.relation.references | Het, Z. (n.d.). standard test method for young modulu. | es_CO |
| dc.relation.references | Jam, A., du Plessis, A., Lora, C., Raghavendra, S., Pellizzari, M., & Benedetti, M. (2022). Manufacturability of lattice structures fabricated by laser powder bed fusion: A novel biomedical application of the beta Ti-21S alloy. Additive Manufacturing, 50(December 2021), 102556. https://doi.org/10.1016/j.addma.2021.102556. | es_CO |
| dc.relation.references | Korkmaz, M. E., Waqar, S., Garcia-Collado, A., Gupta, M. K., & Krolczyk, G. M. (2022). A technical overview of metallic parts in hybrid additive manufacturing industry. Journal of Materials Research and Technology, 18, 384–395. https://doi.org/10.1016/j.jmrt.2022.02.085. | es_CO |
| dc.relation.references | Krishna, L. S. R., & Srikanth, P. J. (2021). Evaluation of environmental impact of additive and subtractive manufacturing processes for sustainable manufacturing. Materials Today: Proceedings, 45, 3054–3060. https://doi.org/10.1016/J.MATPR.2020.12.060. | es_CO |
| dc.relation.references | Li, K., Zhan, J., Yang, T., To, A. C., Tan, S., Tang, Q., Cao, H., & Murr, L. E. (2022). Homogenization timing effect on microstructure and precipitation strengthening of 17–4PH stainless steel fabricated by laser powder bed fusion. Additive Manufacturing, 52(November 2021), 102672. https://doi.org/10.1016/j.addma.2022.102672. | es_CO |
| dc.relation.references | Liu, Z., Zhao, D., Wang, P., Yan, M., Yang, C., Chen, Z., Lu, J., & Lu, Z. (2022). Additive manufacturing of metals: Microstructure evolution and multistage control. Journal of Materials Science & Technology, 100, 224–236. https://doi.org/10.1016/j.jmst.2021.06.011. | es_CO |
| dc.relation.references | Lough, C. S., Liu, T., Wang, X., Brown, B., Landers, R. G., Bristow, D. A., Drallmeier, J. A., & Kinzel, E. C. (2022). Local prediction of Laser Powder Bed Fusion porosity by short-wave infrared imaging thermal feature porosity probability maps. Journal of Materials Processing Technology, 302(December 2021), 117473. https://doi.org/10.1016/j.jmatprotec.2021.117473. | es_CO |
| dc.relation.references | Mayer, T., Brändle, G., Schönenberger, A., & Eberlein, R. (2020). Simulation and validation of residual deformations in additive manufacturing of metal parts. Heliyon, 6(5). https://doi.org/10.1016/j.heliyon.2020.e03987. | es_CO |
| dc.relation.references | Moshiri, M., Charles, A., Elkaseer, A., Scholz, S., Mohanty, S., & Tosello, G. (2020). An industry 4.0 framework for tooling production using metal additive manufacturing-based first-time-right smart manufacturing system. Procedia CIRP, 93, 32–37. https://doi.org/10.1016/J.PROCIR.2020.04.151. | es_CO |
| dc.relation.references | Murr, L. E., Martinez, E., Hernandez, J., Collins, S., Amato, K. N., Gaytan, S. M., & Shindo, P. W. (2012). Microstructures and properties of 17-4 PH stainless steel fabricated by selective laser melting. Journal of Materials Research and Technology, 1(3), 167–177. https://doi.org/10.1016/S2238-7854(12)70029-7. | es_CO |
| dc.relation.references | Nie, M. H., Zhang, S., Wang, Z. Y., Zhang, C. H., Chen, H. T., & Chen, J. (2022). Effect of laser power on microstructure and interfacial bonding strength of laser cladding 17-4PH stainless steel coatings. Materials Chemistry and Physics, 275(September 2021), 125236. https://doi.org/10.1016/j.matchemphys.2021.125236. | es_CO |
| dc.relation.references | Ntamo, D., Lopez-Montero, E., Mack, J., Omar, C., Highett, M. I., Moss, D., Mitchell, N., Soulatintork, P., Moghadam, P. Z., & Zandi, M. (2022). Industry 4.0 in Action: Digitalisation of a Continuous Process Manufacturing for Formulated Products. Digital Chemical Engineering, 3(February), 100025. https://doi.org/10.1016/j.dche.2022.100025. | es_CO |
| dc.relation.references | Oliveira, J. P., LaLonde, A. D., & Ma, J. (2020). Processing parameters in laser powder bed fusion metal additive manufacturing. Materials and Design, 193. https://doi.org/10.1016/J.MATDES.2020.108762. | es_CO |
| dc.relation.references | Pauzon, C., Mishurova, T., Evsevleev, S., Dubiez-Le Goff, S., Murugesan, S., Bruno, G., & Hryha, E. (2021). Residual stresses and porosity in Ti-6Al-4V produced by laser powder bed fusion as a function of process atmosphere and component design. Additive Manufacturing, 47(January), 102340. https://doi.org/10.1016/j.addma.2021.102340. | es_CO |
| dc.relation.references | Pinto, R., & Gonçalves, G. (2022). Application of Artificial Immune Systems in Advanced Manufacturing. Array, 15(October 2021), 100238. https://doi.org/10.1016/j.array.2022.100238. | es_CO |
| dc.relation.references | Prabhu, R., Masia, J. S., Berthel, J. T., Meisel, N. A., & Simpson, T. W. (2021). Design and manufacturability data on additively manufactured solutions for COVID-19. Data in Brief, 36. https://doi.org/10.1016/J.DIB.2021.107012. | es_CO |
| dc.relation.references | Sabooni, S., Chabok, A., Feng, S. C., Blaauw, H., Pijper, T. C., Yang, H. J., & Pei, Y. T. (2021). Laser powder bed fusion of 17–4 PH stainless steel: A comparative study on the effect of heat treatment on the microstructure evolution and mechanical properties. Additive Manufacturing, 46(June), 102176. https://doi.org/10.1016/j.addma.2021.102176. | es_CO |
| dc.relation.references | Sanguedolce, M., Rotella, G., Saffioti, M. R., & Filice, L. (2021a). Functionalized additively manufactured parts for the manufacturing of the future. Procedia Computer Science, 180, 358–365. https://doi.org/10.1016/J.PROCS.2021.01.174. | es_CO |
| dc.relation.references | Sanguedolce, M., Rotella, G., Saffioti, M. R., & Filice, L. (2021b). Functionalized additively manufactured parts for the manufacturing of the future. Procedia Computer Science, 180(2019), 358–365. https://doi.org/10.1016/j.procs.2021.01.174. | es_CO |
| dc.relation.references | Shigueoka, M. O., & Volpato, N. (2021). Expanding manufacturing strategies to advance in porous media planning with material extrusion additive manufacturing. Additive Manufacturing, 38. https://doi.org/10.1016/J.ADDMA.2020.101760. | es_CO |
| dc.relation.references | Shrinivas Mahale, R., Shamanth, V., Hemanth, K., Nithin, S. K., Sharath, P. C., Shashanka, R., Patil, A., & Shetty, D. (2021). Processes and applications of metal additive manufacturing. Materials Today: Proceedings, xxxx, 2–7. https://doi.org/10.1 016/j.matpr.2021.08.298. | es_CO |
| dc.relation.references | Singh, P., M.Singari, R., & Mishra, R. S. (2021). A review of study on modeling and simulation of additive manufacturing processes. Materials Today: Proceedings, xxxx. https://doi.org/10.1016/j.matpr.2021.12.057. | es_CO |
| dc.relation.references | Smoqi, Z., Gaikwad, A., Bevans, B., Kobir, M. H., Craig, J., Abul-Haj, A., Peralta, A., & Rao, P. (2022). Monitoring and prediction of porosity in laser powder bed fusion using physics-informed meltpool signatures and machine learning. Journal of Materials Processing Technology, 304(December 2021), 117550. https://doi.org/10.1016/j.jmatprotec.2022.117550. | es_CO |
| dc.relation.references | Wu, Y., Li, M., Wang, J., Wang, Y., An, X., Fu, H., Zhang, H., Yang, X., & Zou, Q. (2022). Powder-bed-fusion additive manufacturing of molybdenum: Process simulation, optimization, and property prediction. Additive Manufacturing, 58(July), 103069. https://doi.org/10.1016/j.addma.2022.103069. | es_CO |
| dc.relation.references | Wu, Z., Asherloo, M., Jiang, R., Delpazir, M. H., Sivakumar, N., Paliwal, M., Capone, J., Gould, B., Rollett, A., & Mostafaei, A. (2021). Study of printability and porosity formation in laser powder bed fusion built hydride-dehydride (HDH) Ti-6Al-4V. Additive Manufacturing, 47(April), 102323. https://doi.org/10.1016/j.addma.2021.102323. | es_CO |
| dc.relation.references | Yan, Z., Liu, W., Tang, Z., Liu, X., Zhang, N., Li, M., & Zhang, H. (2018). Review on thermal analysis in laser-based additive manufacturing. Optics and Laser Technology, 106, 427–441. https://doi.org/10.1016/j.optlastec.2018.04.034. | es_CO |
| dc.relation.references | Yang, K. T., Kim, M. K., Kim, D., & Suhr, J. (2021). Investigation of laser powder bed fusion manufacturing and post-processing for surface quality of as-built 17-4PH stainless steel. Surface and Coatings Technology, 422(June), 127492. https://doi.org/10.1016/j.surfcoat.2021.127492. | es_CO |
| dc.relation.references | Yao, X. X., & Zhang, Z. (2022). Laser-particle interaction-based heat source model of laser powder bed fusion additive manufacturing. Optics and Laser Technology, 155(January), 108402. https://doi.org/10.1016/j.optlastec.2022.108402. | es_CO |
| dc.rights.accessrights | http://purl.org/coar/access_right/c_abf2 | es_CO |
| dc.type.coarversion | http://purl.org/coar/resource_type/c_2df8fbb1 | es_CO |
| Aparece en las colecciones: | Ingeniería Mecánica | |
Ficheros en este ítem:
| Fichero | Descripción | Tamaño | Formato | |
|---|---|---|---|---|
| Vargas_2022_TG.pdf | Vargas_2022_TG | 7,22 MB | Adobe PDF | Visualizar/Abrir |
Los ítems de DSpace están protegidos por copyright, con todos los derechos reservados, a menos que se indique lo contrario.