Thermal and Mechanical Characterization of Carbides for High Temperature Nuclear Applications

In the facilities for the production of Radioactive Ion Beams (RIBs) according to the Isotope Separation On-Line (ISOL) technique, a production target is typically impinged by a high-power primary beam, generating radioactive isotopes for basic research and technological applications. With the aim t...

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Main Authors: Mattia Manzolaro, Stefano Corradetti, Michele Ballan, Riccardo Salomoni, Alberto Andrighetto, Giovanni Meneghetti
Format: Article
Language:English
Published: MDPI AG 2021-05-01
Series:Materials
Subjects:
Online Access:https://www.mdpi.com/1996-1944/14/10/2689
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spelling doaj-00b71aa2909a4f5492738bea4059e2262021-06-01T00:38:13ZengMDPI AGMaterials1996-19442021-05-01142689268910.3390/ma14102689Thermal and Mechanical Characterization of Carbides for High Temperature Nuclear ApplicationsMattia Manzolaro0Stefano Corradetti1Michele Ballan2Riccardo Salomoni3Alberto Andrighetto4Giovanni Meneghetti5National Institute of Nuclear Physics—Legnaro National Laboratories (INFN-LNL), Viale dell’Università 2, 35020 Legnaro, Padova, ItalyNational Institute of Nuclear Physics—Legnaro National Laboratories (INFN-LNL), Viale dell’Università 2, 35020 Legnaro, Padova, ItalyNational Institute of Nuclear Physics—Legnaro National Laboratories (INFN-LNL), Viale dell’Università 2, 35020 Legnaro, Padova, ItalyDepartment of Industrial Engineering, University of Padova, Via Venezia 1, 35131 Padova, ItalyNational Institute of Nuclear Physics—Legnaro National Laboratories (INFN-LNL), Viale dell’Università 2, 35020 Legnaro, Padova, ItalyDepartment of Industrial Engineering, University of Padova, Via Venezia 1, 35131 Padova, ItalyIn the facilities for the production of Radioactive Ion Beams (RIBs) according to the Isotope Separation On-Line (ISOL) technique, a production target is typically impinged by a high-power primary beam, generating radioactive isotopes for basic research and technological applications. With the aim to guarantee an efficient extraction of the aforementioned isotopes, the production target must work in a high vacuum environment, at temperatures that are usually between 1600 °C and 2200 °C. Its main components are often characterized by intense temperature gradients and consequently by severe thermal stresses. Carbides are widely used for target manufacturing, and in this work a specific method for their thermal and mechanical characterization is presented and discussed. It is based on the comparison between experimental measurements and numerical simulations, with the introduction of the novel Virtual Thermoelastic Parameters approach for the structural verification procedure. High-performance silicon carbides (SiC) are taken as a reference to describe the method. Measured emissivity and thermal conductivity data are presented and discussed, together with the experimental estimation of material limitations for both temperature and stress fields. The aforementioned results can be promptly used for the design process of high-power ISOL targets.https://www.mdpi.com/1996-1944/14/10/2689high-power beamhigh temperaturetemperature gradientthermal characterizationmechanical characterizationcarbide
collection DOAJ
language English
format Article
sources DOAJ
author Mattia Manzolaro
Stefano Corradetti
Michele Ballan
Riccardo Salomoni
Alberto Andrighetto
Giovanni Meneghetti
spellingShingle Mattia Manzolaro
Stefano Corradetti
Michele Ballan
Riccardo Salomoni
Alberto Andrighetto
Giovanni Meneghetti
Thermal and Mechanical Characterization of Carbides for High Temperature Nuclear Applications
Materials
high-power beam
high temperature
temperature gradient
thermal characterization
mechanical characterization
carbide
author_facet Mattia Manzolaro
Stefano Corradetti
Michele Ballan
Riccardo Salomoni
Alberto Andrighetto
Giovanni Meneghetti
author_sort Mattia Manzolaro
title Thermal and Mechanical Characterization of Carbides for High Temperature Nuclear Applications
title_short Thermal and Mechanical Characterization of Carbides for High Temperature Nuclear Applications
title_full Thermal and Mechanical Characterization of Carbides for High Temperature Nuclear Applications
title_fullStr Thermal and Mechanical Characterization of Carbides for High Temperature Nuclear Applications
title_full_unstemmed Thermal and Mechanical Characterization of Carbides for High Temperature Nuclear Applications
title_sort thermal and mechanical characterization of carbides for high temperature nuclear applications
publisher MDPI AG
series Materials
issn 1996-1944
publishDate 2021-05-01
description In the facilities for the production of Radioactive Ion Beams (RIBs) according to the Isotope Separation On-Line (ISOL) technique, a production target is typically impinged by a high-power primary beam, generating radioactive isotopes for basic research and technological applications. With the aim to guarantee an efficient extraction of the aforementioned isotopes, the production target must work in a high vacuum environment, at temperatures that are usually between 1600 °C and 2200 °C. Its main components are often characterized by intense temperature gradients and consequently by severe thermal stresses. Carbides are widely used for target manufacturing, and in this work a specific method for their thermal and mechanical characterization is presented and discussed. It is based on the comparison between experimental measurements and numerical simulations, with the introduction of the novel Virtual Thermoelastic Parameters approach for the structural verification procedure. High-performance silicon carbides (SiC) are taken as a reference to describe the method. Measured emissivity and thermal conductivity data are presented and discussed, together with the experimental estimation of material limitations for both temperature and stress fields. The aforementioned results can be promptly used for the design process of high-power ISOL targets.
topic high-power beam
high temperature
temperature gradient
thermal characterization
mechanical characterization
carbide
url https://www.mdpi.com/1996-1944/14/10/2689
work_keys_str_mv AT mattiamanzolaro thermalandmechanicalcharacterizationofcarbidesforhightemperaturenuclearapplications
AT stefanocorradetti thermalandmechanicalcharacterizationofcarbidesforhightemperaturenuclearapplications
AT micheleballan thermalandmechanicalcharacterizationofcarbidesforhightemperaturenuclearapplications
AT riccardosalomoni thermalandmechanicalcharacterizationofcarbidesforhightemperaturenuclearapplications
AT albertoandrighetto thermalandmechanicalcharacterizationofcarbidesforhightemperaturenuclearapplications
AT giovannimeneghetti thermalandmechanicalcharacterizationofcarbidesforhightemperaturenuclearapplications
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