Mixed-mode Stress Intensity Factors for Tubes under Pure Torsion Loading

dc.contributor.authorDíaz Rodríguez, Jorge Guillermo
dc.contributor.authorNazaré Marques, Luiz Fernando
dc.contributor.authorGuzmán, Rolando Enrique
dc.contributor.cvlachttps://scienti.colciencias.gov.co/cvlac/visualizador/generarCurriculoCv.do?cod_rh=0001306510
dc.contributor.gruplachttps://scienti.colciencias.gov.co/gruplac/jsp/visualiza/visualizagr.jsp?nro=00000000002805
dc.contributor.orcidhttps://orcid.org/0000-0002-0479-4827
dc.date.accessioned2019-09-16T17:43:09Z
dc.date.available2019-09-16T17:43:09Z
dc.date.issued2018-08-01
dc.descriptionA pesar de parecer una combinación geometría-carga común, no existe ni solución analítica ni numérica para el Factor de Intensificación de Esfuerzos en tubos fisurados sometidos a torsión pura. Normas como API 579/ASME FFS, BS 7910 o handbooks no incluyen este caso. Existe un sinnúmero de soluciones para combinaciones carga-geometría basadas en FEM o funciones de peso, pero no para una para tubería bajo torsión pura. Este trabajo muestra curvas de KI, KII, and KIII para fisuras pasantes obtenidas con simulaciones en ANSYS ® para tubos delgados bajo torsión pura con una ranura horizontal, calculados por medio de la integral J. Adicionalmente, de KI, KII, and KIII son calculados usando el desplazamiento relativo de dos puntos opuestos a los bordes de la grieta y detrás de la punta de esta usando ecuaciones de la Mecánica de Fractura Lineal Elástica (LEFM en inglés) para la apertura de la boca de la grieta (COD en inglés) y Desplazamiento de la Punta de la Grieta (CTSD en inglés) obtenidos con una segunda e independiente modelación numérica. Los resultados se comparan con valores reportados en literatura que fueron obtenidos por medio de la técnica de la Correlación de Imágenes Digitales (DIC en inglés) para grietas con crecimiento por fatiga.spa
dc.description.abstractAlthough it seems like a common load-geometry configuration, there is neither an analytical nor a numerical solution for Stress Intensity Factors (SIF) in cracked tubes under pure torsion. Standards such as API 579, BS 7910 or handbooks do not present such case. There is plenty of solutions based on FEM or weight functions calculations for an extensive load-geometry combinations, but not for tubes under pure torsion. This paper shows curves of KI, KII, and KIII for through-wall cracks obtained with ANSYS simulations for slim tubes, under pure torsion with a rounded horizontal slit, numerically calculated via J-integral. Additionally KI, KII, and KIII are calculated using relative displacement between two points along the crack lips using Linear Elastic Fracture Mechanics (LEFM) formulations for Crack Tip Opening Displacement (COD) and Crack Tip Sliding Displacement (CTSD). Results are compared with experimentally measured SIF using the Digital Image Correlation (DIC) technique for fatigued-growth cracks reported in literature.spa
dc.description.domainhttps://www.ustabuca.edu.co/spa
dc.format.mimetypeapplication/pdf
dc.identifier.citationDíaz Rodríguez, J. G., Nazaré Marques, L. F., Guzmán, R. E. (2018). Mixed-Mode Stress Intensity Factors for Tubes under Pure Torsion Loading. Key Engineering Materials, 774, 373-378. DOI: https://doi.org/10.4028/www.scientific.net/KEM.774.373spa
dc.identifier.doihttps://doi.org/10.4028/www.scientific.net/KEM.774.373spa
dc.identifier.urihttp://hdl.handle.net/11634/18684
dc.publisher.branchCRAI-USTA Bucaramangaspa
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dc.rightsCC0 1.0 Universal
dc.rights.urihttp://creativecommons.org/publicdomain/zero/1.0/
dc.subject.keywordCTODspa
dc.subject.keywordCTSDspa
dc.subject.keywordFEMspa
dc.subject.keywordPure Torsionspa
dc.subject.keywordStress Intensity Factorspa
dc.subject.lembTensión de rupturaspa
dc.subject.lembTorsiónspa
dc.subject.lembTubosspa
dc.subject.proposalCTODspa
dc.subject.proposalCTSDspa
dc.subject.proposalFEMspa
dc.subject.proposalTorsión puraspa
dc.subject.proposalFactor de Intensificación de Esfuerzosspa
dc.titleMixed-mode Stress Intensity Factors for Tubes under Pure Torsion Loadingspa
dc.type.categoryGeneración de Nuevo Conocimiento: Artículos publicados en revistas especializadas - Electrónicosspa

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