Título
Characterization of the heat transfer coefficient at near solidus forming condition using columnar pressing testAutor-a (de otra institución)
Otras instituciones
Universidad de DeustoVersión
Version publicada
Derechos
© 2024 The AuthorsAcceso
Acceso abiertoVersión del editor
https://doi.org/10.1007/s00170-024-14531-6Publicado en
International Journal of Advanced Manufacturing Technology Vol. 135Primera página
721Última página
733Editor
Springer NaturePalabras clave
Near solidus forming
Digital twin
FORGE NxT®
Heat transfer coefficient ... [+]
Digital twin
FORGE NxT®
Heat transfer coefficient ... [+]
Near solidus forming
Digital twin
FORGE NxT®
Heat transfer coefficient
ODS 9 Industria, innovación e infraestructura
ODS 13 Acción por el clima [-]
Digital twin
FORGE NxT®
Heat transfer coefficient
ODS 9 Industria, innovación e infraestructura
ODS 13 Acción por el clima [-]
Materia (Tesauro UNESCO)
Transferencia de calorClasificación UNESCO
Transferencia de calorResumen
This study addresses the significant gap in the literature regarding the heat transfer coefficient (HTC) under near-solidus forming (NSF) conditions, where materials are shaped close to their solidus ... [+]
This study addresses the significant gap in the literature regarding the heat transfer coefficient (HTC) under near-solidus forming (NSF) conditions, where materials are shaped close to their solidus state, presenting complex behaviour compared to traditional hot forming processes. Despite the pivotal role of heat transfer in developing a reliable material model for the digital twin (DT), limited data exist particularly regarding HTC characterization at NSF. Additionally, testing methodologies suitable for the high-temperature conditions, crucial for NSF processes, have not been adequately addressed. To fill this gap, this study aims to characterize HTC under NSF conditions using a columnar pressing test. The test was conducted at three different temperatures such as 1250, 1300, and 1360 °C and two different pressures, 2 and 8 MPa. During the test, temperature data was collected at the centre of the sample using a k-type thermocouple. Furthermore, the DT of the pressing test was developed and the three-dimensional finite element model of 42CrMo4 steel was constructed using FORGE NxT® 4.0 FEM software. The simulations were performed with varying HTC values to replicate the experimental test data. Inverse modelling techniques were then applied to compare experimental and simulated data, enabling the characterization and optimization of HTC values under NSF testing conditions. The results demonstrated that HTC in the NSF process is primary impacted by the forming pressure, whereas temperature change showed no variation at the studied ranges. The HTC value of 500 W/m2K and 800 W/m2K was identified at 2 MPa and 8 MPa, respectively. The conclusion of this study aims for a better understanding of heat transfer phenomena in NSF processes, enhancing the reliability of DT for industrial applications. [-]
Financiador
Gobierno de EspañaComisión Europea
Gobierno Vasco
Programa
Ayudas a Proyectos de Generación de Conocimiento y a actuaciones para la formación de personal investigador predoctoralResearch Fund for Coal and Steel (RFCS)
Elkartek 2020
Número
PID2022-139130OA-I00RFCS-2018-800763
KK-2020-00087
URI de la ayuda
Sin informaciónSin información
Sin información
Proyecto
Exploration of high entropy alloys as substitute materials for sustainable mobility and decarbonisation (HEAPLAS)Hybrid Semi-Solid Forming (HSSF)
Procesos de Fabricación de Excelentes para propiedades máximas (PROMAX)
Colecciones
- Artículos - Ingeniería [683]
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