MEASUREMENT OF FURNACE CHARGE TEMPERATURE AND NUMERICAL CALCULATION OF HEAT TRANSFER COEFFICIENT DURING HEATING OF CONTINUOUS CAST PRODUCTS
The result's identifiers
Result code in IS VaVaI
<a href="https://www.isvavai.cz/riv?ss=detail&h=RIV%2F00216305%3A26210%2F26%3A0199343" target="_blank" >RIV/00216305:26210/26:0199343 - isvavai.cz</a>
Result on the web
<a href="https://www.confer.cz/metal/2025/5074-measurement-of-furnace-charge-temperature-and-numerical-calculation-of-heat-transfer-coefficient-during-heating-of-continuous-cast-products" target="_blank" >https://www.confer.cz/metal/2025/5074-measurement-of-furnace-charge-temperature-and-numerical-calculation-of-heat-transfer-coefficient-during-heating-of-continuous-cast-products</a>
DOI - Digital Object Identifier
<a href="http://dx.doi.org/10.37904/metal.2025.5074" target="_blank" >10.37904/metal.2025.5074</a>
Alternative languages
Result language
angličtina
Original language name
MEASUREMENT OF FURNACE CHARGE TEMPERATURE AND NUMERICAL CALCULATION OF HEAT TRANSFER COEFFICIENT DURING HEATING OF CONTINUOUS CAST PRODUCTS
Original language description
With rising energy costs, efficient and accurate heating of the charge to rolling temperature is critical to reducing operating costs and improving the quality of the finished product. The surface temperature of the charge obtained from non-contact measurements after exiting the furnace does not provide information about the internal temperature of the charge, nor does it reveal the temperature profile prior to exiting the furnace. As a result, charge overheating, low internal temperature, or insufficient soaking time at target temperature may go undetected. This paper presents a methodology that includes operational temperature measurements inside steel blooms throughout the heating process in industrial furnaces and subsequent numerical calculation of the heat transfer coefficient. The operational measurements were carried out using thermocouples placed inside circular continuously cast semi-finished product, which allowed precise monitoring of the temperature profile throughout the heating process. The data showed that the furnace design significantly affects the thermal homogeneity of the furnace charge. In a rotary hearth furnace, a significant influence of the furnace bottom on the thermal homogeneity of the charge was observed, especially when the bloom was in full contact with the bottom. To better understand these phenomena, a numerical inverse calculation was performed to determine the heat transfer coefficient as a function of position and temperature within the furnace. This coefficient is critical for accurate numerical modelling of the heating process without the need for complex combustion flow and radiative exchange calculations. Knowledge of the heat transfer coefficient allows process optimization, minimization of energy consumption, and improvement of final product quality. The results presented provide valuable insights into industrial practice and demonstrate possible approaches to improve heating efficiency.
Czech name
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Czech description
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Classification
Type
D - Article in proceedings
CEP classification
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OECD FORD branch
20303 - Thermodynamics
Result continuities
Project
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Continuities
S - Specificky vyzkum na vysokych skolach
Others
Publication year
2025
Confidentiality
S - Úplné a pravdivé údaje o projektu nepodléhají ochraně podle zvláštních právních předpisů
Data specific for result type
Article name in the collection
Sborník z konference
ISBN
978-80-88365-27-3
ISSN
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e-ISSN
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Number of pages
6
Pages from-to
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Publisher name
TANGER, s.r.o.
Place of publication
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Event location
Czech Rep., Brno
Event date
May 21, 2025
Type of event by nationality
EUR - Evropská akce
UT code for WoS article
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