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Proton Irradiation Effects on the Physio-Mechanical Properties and Microstructure of Cold-Worked Molybdenum

High temperature refractory materials and alloys including Mo and TZM have been considered and studied to assess their applicability in fusion reactor applications in addition to spallation targets in particle accelerators. The impacts of neutron, proton and ion irradiation on the properties and mic...

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Autores principales: Simos, Nikolaos, Quaranta, E, Charitonidis, Nikolaos, Redaelli, Stefano, Bertarelli, Alessandro, Mariani, N, Zhong, Z, Ghose, S, Doorhyee, E, Zhong, H, Kotsina, Z
Lenguaje:eng
Publicado: 2017
Materias:
Acceso en línea:https://dx.doi.org/10.4172/2325-9809.1000180
http://cds.cern.ch/record/2301792
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author Simos, Nikolaos
Quaranta, E
Charitonidis, Nikolaos
Redaelli, Stefano
Bertarelli, Alessandro
Mariani, N
Zhong, Z
Ghose, S
Doorhyee, E
Zhong, H
Kotsina, Z
author_facet Simos, Nikolaos
Quaranta, E
Charitonidis, Nikolaos
Redaelli, Stefano
Bertarelli, Alessandro
Mariani, N
Zhong, Z
Ghose, S
Doorhyee, E
Zhong, H
Kotsina, Z
author_sort Simos, Nikolaos
collection CERN
description High temperature refractory materials and alloys including Mo and TZM have been considered and studied to assess their applicability in fusion reactor applications in addition to spallation targets in particle accelerators. The impacts of neutron, proton and ion irradiation on the properties and microstructure of pure Mo and its combination TZM have been evaluated through illumination damage studies. Cold-worked molybdenum (CW half), described by a microstructure comprising of non-consistently extended grains, has been considered for use in the Large Hadron Collider 7 TeV shaft halo cleaning framework has incited the present investigation. To assess the degradation of key physio-mechanical properties of the cold-worked structure following protracted exposure to proton irradiation as well as the impact of the irradiation temperature on the degradation irradiations with 200 MeV protons at 960°C to fluencies $\sim 2 \times 10^{21}$ p/cm$^{2}$ and with 28 MeV at below 600°C to fluency of $\sim 6 \times 10^{20}$ p/cm$^{2}$ were performed at Brookhaven National Laboratory. High energy X-rays at the NSLS and NSLS II synchrotrons were utilized in the post-irradiation evaluation (PIE) to assess the evolution of the microstructure. It was revealed that the cold-worked Mo and in agreement with neutron irradiation studies at high temperatures, suffers serious reduction in tensile strength due to the evolution of defects into dislocation networks. Further, irradiation at temperatures near the full re-crystallization temperature of the cold-worked structure removes the texture of the microstructure induced by cold working.
id oai-inspirehep.net-1642567
institution Organización Europea para la Investigación Nuclear
language eng
publishDate 2017
record_format invenio
spelling oai-inspirehep.net-16425672019-09-30T06:29:59Zdoi:10.4172/2325-9809.1000180http://cds.cern.ch/record/2301792engSimos, NikolaosQuaranta, ECharitonidis, NikolaosRedaelli, StefanoBertarelli, AlessandroMariani, NZhong, ZGhose, SDoorhyee, EZhong, HKotsina, ZProton Irradiation Effects on the Physio-Mechanical Properties and Microstructure of Cold-Worked MolybdenumAccelerators and Storage RingsDetectors and Experimental TechniquesHigh temperature refractory materials and alloys including Mo and TZM have been considered and studied to assess their applicability in fusion reactor applications in addition to spallation targets in particle accelerators. The impacts of neutron, proton and ion irradiation on the properties and microstructure of pure Mo and its combination TZM have been evaluated through illumination damage studies. Cold-worked molybdenum (CW half), described by a microstructure comprising of non-consistently extended grains, has been considered for use in the Large Hadron Collider 7 TeV shaft halo cleaning framework has incited the present investigation. To assess the degradation of key physio-mechanical properties of the cold-worked structure following protracted exposure to proton irradiation as well as the impact of the irradiation temperature on the degradation irradiations with 200 MeV protons at 960°C to fluencies $\sim 2 \times 10^{21}$ p/cm$^{2}$ and with 28 MeV at below 600°C to fluency of $\sim 6 \times 10^{20}$ p/cm$^{2}$ were performed at Brookhaven National Laboratory. High energy X-rays at the NSLS and NSLS II synchrotrons were utilized in the post-irradiation evaluation (PIE) to assess the evolution of the microstructure. It was revealed that the cold-worked Mo and in agreement with neutron irradiation studies at high temperatures, suffers serious reduction in tensile strength due to the evolution of defects into dislocation networks. Further, irradiation at temperatures near the full re-crystallization temperature of the cold-worked structure removes the texture of the microstructure induced by cold working.oai:inspirehep.net:16425672017
spellingShingle Accelerators and Storage Rings
Detectors and Experimental Techniques
Simos, Nikolaos
Quaranta, E
Charitonidis, Nikolaos
Redaelli, Stefano
Bertarelli, Alessandro
Mariani, N
Zhong, Z
Ghose, S
Doorhyee, E
Zhong, H
Kotsina, Z
Proton Irradiation Effects on the Physio-Mechanical Properties and Microstructure of Cold-Worked Molybdenum
title Proton Irradiation Effects on the Physio-Mechanical Properties and Microstructure of Cold-Worked Molybdenum
title_full Proton Irradiation Effects on the Physio-Mechanical Properties and Microstructure of Cold-Worked Molybdenum
title_fullStr Proton Irradiation Effects on the Physio-Mechanical Properties and Microstructure of Cold-Worked Molybdenum
title_full_unstemmed Proton Irradiation Effects on the Physio-Mechanical Properties and Microstructure of Cold-Worked Molybdenum
title_short Proton Irradiation Effects on the Physio-Mechanical Properties and Microstructure of Cold-Worked Molybdenum
title_sort proton irradiation effects on the physio-mechanical properties and microstructure of cold-worked molybdenum
topic Accelerators and Storage Rings
Detectors and Experimental Techniques
url https://dx.doi.org/10.4172/2325-9809.1000180
http://cds.cern.ch/record/2301792
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