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Title
Test bench for radiative waste heat recovery in steel mills
Author
Mesonero, I.
Fernandez de Arroiabe, Peru
Iturralde, J.
López, S.
Martinez Agirre, Manex
Gómez de Arteche, M.
Herrero, S.
Bou-Ali, M. MounirORCID
Research Group
Mecánica de fluidos
Other institutions
https://ror.org/00wvqgd19
Tekniker
Tecnalia
Version
Preprint
Document type
Journal Article
Language
English
Rights
© 2025 The authors
Access
Open access
URI
https://hdl.handle.net/20.500.11984/13984
Publisher’s version
https://doi.org/10.1016/j.tsep.2025.103458
Published at
Thermal Science and Engineering Progress  Vol. 60. N. art. 103458. April 2025
Publisher
Elsevier
Keywords
Radiation heat transfer
Industry
Steelmaking industry
Thermal characterization
Subject (UNESCO Thesaurus)
Thermodynamics
UNESCO Classification
Thermodynamics
Abstract
This paper presents the design, manufacturing, and validation of a test bench for a radiation waste heat recovery system, which can reproduce the operating conditions of a real steelmaking factory, in ... [+]
This paper presents the design, manufacturing, and validation of a test bench for a radiation waste heat recovery system, which can reproduce the operating conditions of a real steelmaking factory, in particular, continuous casting. The experimental unit consists of three main components: an emitter, a heat capturing device and a thermal oil loop. The influence of different operating conditions, including emitter surface temperature, thermal oil inlet temperature, and oil mass flow rate, on the performance of the recovery unit was evaluated. Additionally, the impact of the corner effect was studied to determine the effect on the radiation heat transfer. The results showed that the proposed experimental unit can achieve surface temperatures up to 1000 °C, which are like those found in the selected area of the steelmaking process. The temperature of the emitter was found to have a substantial effect on the performance of the heat recovery unit, especially when the temperature is below 800 °C. The oil inlet temperature and mass flow rate were also found to influence the thermal radiation heat transfer rate and the recovery efficiency of the device. The findings reveal the importance of the maximum temperature, oil inlet temperature, and oil mass flow rate for optimizing the waste heat recovery system. This study proposes a valuable experimental methodology for analysing thermal radiant heat recovery units under real conditions, which can be helpful in developing optimized systems to harness waste heat from high-temperature energy-intensive industries, considerably reducing their carbon footprint. [-]
Funder
Gobierno Vasco
Gobierno Vasco
Gobierno de España
Program
Ikertalde Convocatoria 2022-2025
Elkartek 2017
Programa Estatal para Impulsar la Investigación Científico-Técnica y su Transferencia, del Plan Estatal de Investigación Científica, Técnica y de Innovación 2021-2023. Proyectos de generación de conocimiento 2021
Number
IT1505-22
KK-2017-00060
PID2021-124232OB-I00
Award URI
Sin información
Sin información
Sin información
Project
Mecánica de fluidos (IKERTALDE 2022-2025)
Waste Heat Collection from Solids for Efficient and Competitive Use (BEROA-GO)
Mecanismos de Transporte en la mejora de la absorción debido a los aditivos (TREATED)
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