Exploring diffusion bonding of niobium and its alloys with tungsten and a molybdenum alloy for high-energy particle target applications

Fuente: arXiv
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Main Authors: Griesemer, Tina, Ximenes, Rui Franqueira, Ahdida, Claudia, Izquierdo, Gonzalo Arnau, Santillana, Ignacio Aviles, Callaghan, Jack, Dumont, Gerald, Dutilleul, Thomas, Terricabras, Adria Gallifa, Höll, Stefan, Jacobsson, Richard, Kyffin, William, Mamun, Abdullah Al, Mazzola, Giuseppe, Fontenla, Ana Teresa Pérez, De Frutos, Oscar Sacristan, Esposito, Luigi Salvatore, Sgobba, Stefano, Calviani, Marco
Format: Preprint
Published: 2024
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author Griesemer, Tina
Ximenes, Rui Franqueira
Ahdida, Claudia
Izquierdo, Gonzalo Arnau
Santillana, Ignacio Aviles
Callaghan, Jack
Dumont, Gerald
Dutilleul, Thomas
Terricabras, Adria Gallifa
Höll, Stefan
Jacobsson, Richard
Kyffin, William
Mamun, Abdullah Al
Mazzola, Giuseppe
Fontenla, Ana Teresa Pérez
De Frutos, Oscar Sacristan
Esposito, Luigi Salvatore
Sgobba, Stefano
Calviani, Marco
author_facet Griesemer, Tina
Ximenes, Rui Franqueira
Ahdida, Claudia
Izquierdo, Gonzalo Arnau
Santillana, Ignacio Aviles
Callaghan, Jack
Dumont, Gerald
Dutilleul, Thomas
Terricabras, Adria Gallifa
Höll, Stefan
Jacobsson, Richard
Kyffin, William
Mamun, Abdullah Al
Mazzola, Giuseppe
Fontenla, Ana Teresa Pérez
De Frutos, Oscar Sacristan
Esposito, Luigi Salvatore
Sgobba, Stefano
Calviani, Marco
contents Particle-producing targets in high-energy research facilities are often made from refractory metals, and they typically require dedicated cooling systems due to the challenging thermomechanical conditions they experience. However, direct contact of water with target blocks can induce erosion, corrosion, and embrittlement, especially of tungsten (W). One approach to overcoming this problem is cladding the blocks with tantalum (Ta). Unfortunately, Ta generates high decay heat when irradiated, raising safety concerns in the event of a loss-of-cooling accident. This study explored the capacity of niobium (Nb) and its alloys to form diffusion bonds with W and TZM (a molybdenum alloy with titanium and zirconium). This is because the Beam Dump Facility (BDF), a planned new fixed-target installation in CERN's North Area, uses these target materials. The bonding quality of pure Nb, Nb1Zr, and C103 (a Nb alloy with 10% hafnium and 1% titanium) with TZM and W obtained using hot isostatic pressing (HIP) was evaluated. The effects of different HIP temperatures and the introduction of a Ta interlayer were examined. Optical microscopy indicated promising bonding interfaces, which were further characterized using tensile tests and thermal-diffusivity measurements. Their performance under high-energy beam impact was validated using thermomechanical simulations. C103 exhibited higher interface strengths and safety factors than Ta2.5W, positioning it as a potential alternative cladding material for the BDF production target. The findings highlight the viability of Nb-based materials, particularly C103, for improving operational safety and efficiency in fixed-target physics experiments; however, considerations regarding the long half-life of 94Nb require further attention.
format Preprint
id arxiv_https___arxiv_org_abs_2410_01988
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Exploring diffusion bonding of niobium and its alloys with tungsten and a molybdenum alloy for high-energy particle target applications
Griesemer, Tina
Ximenes, Rui Franqueira
Ahdida, Claudia
Izquierdo, Gonzalo Arnau
Santillana, Ignacio Aviles
Callaghan, Jack
Dumont, Gerald
Dutilleul, Thomas
Terricabras, Adria Gallifa
Höll, Stefan
Jacobsson, Richard
Kyffin, William
Mamun, Abdullah Al
Mazzola, Giuseppe
Fontenla, Ana Teresa Pérez
De Frutos, Oscar Sacristan
Esposito, Luigi Salvatore
Sgobba, Stefano
Calviani, Marco
Materials Science
Applied Physics
Particle-producing targets in high-energy research facilities are often made from refractory metals, and they typically require dedicated cooling systems due to the challenging thermomechanical conditions they experience. However, direct contact of water with target blocks can induce erosion, corrosion, and embrittlement, especially of tungsten (W). One approach to overcoming this problem is cladding the blocks with tantalum (Ta). Unfortunately, Ta generates high decay heat when irradiated, raising safety concerns in the event of a loss-of-cooling accident. This study explored the capacity of niobium (Nb) and its alloys to form diffusion bonds with W and TZM (a molybdenum alloy with titanium and zirconium). This is because the Beam Dump Facility (BDF), a planned new fixed-target installation in CERN's North Area, uses these target materials. The bonding quality of pure Nb, Nb1Zr, and C103 (a Nb alloy with 10% hafnium and 1% titanium) with TZM and W obtained using hot isostatic pressing (HIP) was evaluated. The effects of different HIP temperatures and the introduction of a Ta interlayer were examined. Optical microscopy indicated promising bonding interfaces, which were further characterized using tensile tests and thermal-diffusivity measurements. Their performance under high-energy beam impact was validated using thermomechanical simulations. C103 exhibited higher interface strengths and safety factors than Ta2.5W, positioning it as a potential alternative cladding material for the BDF production target. The findings highlight the viability of Nb-based materials, particularly C103, for improving operational safety and efficiency in fixed-target physics experiments; however, considerations regarding the long half-life of 94Nb require further attention.
title Exploring diffusion bonding of niobium and its alloys with tungsten and a molybdenum alloy for high-energy particle target applications
topic Materials Science
Applied Physics
url https://arxiv.org/abs/2410.01988