Izenburua
Breakage risk analysis during the glass tempering process based on fluid-structure interaction approachBertsioa
Postprinta
Eskubideak
© 2024 The Author(s)Sarbidea
Sarbide bahituaArgitaratzailearen bertsioa
https://doi.org/10.1007/s40940-024-00283-yNon argitaratua
Glass Structures & Engineering Vol. 9. November, 2024Lehenengo orria
455Azken orria
469Argitaratzailea
Springer NatureGako-hitzak
Glass tempering
Risk of fracture
Mist cooling
Residual stresses ... [+]
Risk of fracture
Mist cooling
Residual stresses ... [+]
Glass tempering
Risk of fracture
Mist cooling
Residual stresses
Fluid-structure interaction
ODS 9 Industria, innovación e infraestructura [-]
Risk of fracture
Mist cooling
Residual stresses
Fluid-structure interaction
ODS 9 Industria, innovación e infraestructura [-]
Gaia (UNESCO Tesauroa)
http://vocabularies.unesco.org/thesaurus/concept5015UNESCO Sailkapena
http://skos.um.es/unesco6/3312Laburpena
In recent decades, there has been a perceptible transformation in how glass is perceived, evolving from being used for its aesthetic appeal to being acknowledged for its structural capabilities. Struc ... [+]
In recent decades, there has been a perceptible transformation in how glass is perceived, evolving from being used for its aesthetic appeal to being acknowledged for its structural capabilities. Structural glass components are most often heat treated to increase their ultimate strength. For this purpose, the tempering process is applied. In this context, air is the quintessential cooling technique employed to rapidly cool and fortify the material due to its associated low cost. Nevertheless, it may encounter certain limitations when quenching low thickness components, making other techniques, such as spray mist cooling, to gain traction. Additionally, glass is a very brittle and sensitive material to local stress concentrations. Thus, depending on how the tempering process is performed, an excessive and/or non-homogeneous cooling might result in local transient stresses, which may exceed the allowable strength and cause premature fracture of the material. To this end, the non-uniform transient stress development during glass tempering is studied based on fluid–structure interaction modelling. In this way, the risk of in-process breakage considering the local phenomena during the glass cooling process is assessed. Water mist cooling is able to temper thin glass but, at the same time, large tensile stresses might develop during the cooling down process. This fact fosters the adoption of an interrupt tempering technique. The obtained numerical results are consistent with previous experimental investigations available in the literature. [-]
Finantzatzailea
Gobierno VascoGobierno Vasco
Gobierno Vasco
Programa
Elkartek 2023Ikertalde Convocatoria 2022-2025
Ikertalde Convocatoria 2019-2021
Zenbakia
KK-2023-00017IT1505-22
IT1316-19
Laguntzaren URIa
Sin informaciónSin información
Sin información
Proiektua
ICME23Mecánica de fluidos
Diseño y Mecánica Estructural