Advanced THermomechanical mOdelling of Refractory linings
Refractories are heat-resistant materials used as inner linings of high temperature furnaces, reactors and processing units. ATHOR (Advanced THermomechanical multiscale mOdelling of Refractory linings) is an innovative, collaborat...
ver más
¿Tienes un proyecto y buscas un partner? Gracias a nuestro motor inteligente podemos recomendarte los mejores socios y ponerte en contacto con ellos. Te lo explicamos en este video
Proyectos interesantes
THERMOPC
Thermomechanical Modelling of Powder Compaction
222K€
Cerrado
PID2021-122676NB-I00
UN INNOVADOR PARADIGMA MULTI-ESCALA BASADO EN DATOS PARA EL...
100K€
Cerrado
BES-2013-066591
MODELOS MULTIESCALA DE LA TERMODINAMICA DE DEFECTOS DISCRETO...
84K€
Cerrado
CATAPULT
Coupling ATomistics and mesoscAle Plasticity for toUghness o...
247K€
Cerrado
DPI2012-32508
MODELOS MULTIESCALA DE LA TERMODINAMICA DE DEFECTOS DISCRETO...
59K€
Cerrado
Duración del proyecto: 55 meses
Fecha Inicio: 2017-08-03
Fecha Fin: 2022-03-31
Líder del proyecto
UNIVERSITE DE LIMOGES
No se ha especificado una descripción o un objeto social para esta compañía.
TRL
4-5
Presupuesto del proyecto
4M€
Fecha límite de participación
Sin fecha límite de participación.
Descripción del proyecto
Refractories are heat-resistant materials used as inner linings of high temperature furnaces, reactors and processing units. ATHOR (Advanced THermomechanical multiscale mOdelling of Refractory linings) is an innovative, collaborative and interdisciplinary project that brings together 6 academic beneficiaries and 8 private partners. The main objective is to develop high-end engineering technologies in material engineering and numerical simulations thanks to an intensive cooperation between academia, raw materials suppliers, refractory producers and end-users. Starting from material characterization, all significant properties will be investigated, including fracture behaviour, tension and compression creep behaviour, corrosion and thermal shock resistance. The interdisciplinary aspects will be addressed thanks to a multiscale approach looking at the influences of micro-, meso- and macro-characteristics on each other. To conduct their research and interlink the different topics, the 15 recruited researchers will take advantage of the most sophisticated numerical tools to model, design and predict the life of different lining configurations in critical operation conditions.
The current financial situation of the European steel industry urges the producers to dramatically reduce their production costs. This project is expected to substantially contribute to find solutions through the design of more robust and more reliable refractory linings. Not only the total cost of refractory materials is then reduced, but the equipment’s availability and the process control are improved. In addition to the large energy savings that meet the industrial partner’s interests, the project will help to reduce the environmental impact of high temperature processes.
The ATHOR network is deeply committed to provide a combination of research and training activities which will support and enlarge the initiative of the Federation for International Refractory Research and Education (FIRE).