Multiphysics Simulations of Thermal Shock Testing of Nanofibrous High Power Targets

Fuente: arXiv
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Main Authors: Asztalos, W., Torun, Y., Bidhar, S., Pellemoine, F., Rath, P.
Format: Preprint
Published: 2024
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author Asztalos, W.
Torun, Y.
Bidhar, S.
Pellemoine, F.
Rath, P.
author_facet Asztalos, W.
Torun, Y.
Bidhar, S.
Pellemoine, F.
Rath, P.
contents Increase of primary beam power for neutrino beam-lines leads to a reduced lifespan for production targets. New concepts for robust targets are emerging from the field of High Power Targetry (HPT); one idea being investigated by the HPT R&D Group at Fermilab is an electrospun nanofiber target. As part of their evaluation, samples with different densities were sent to the HiRadMat facility at CERN for thermal shock tests. The samples with the higher density, irradiated under a high intensity beam pulse, exhibit major damage at the impact site whereas those with the lower density show no apparent damage. The exact cause of this failure was unclear at the time. In this paper, we present the results of multiphysics simulations of the thermal shock experienced by the nanofiber targets that suggest the failure originates from the reduced permeability of the high density sample to air flow. The air present in the porous target expands due to heating from the beam, but is unable to flow freely in the high density sample, resulting in a larger back pressure that blows apart the nanofiber mat. We close with a discussion on how to further validate this hypothesis.
format Preprint
id arxiv_https___arxiv_org_abs_2405_19496
institution arXiv
publishDate 2024
record_format arxiv
spellingShingle Multiphysics Simulations of Thermal Shock Testing of Nanofibrous High Power Targets
Asztalos, W.
Torun, Y.
Bidhar, S.
Pellemoine, F.
Rath, P.
Accelerator Physics
Increase of primary beam power for neutrino beam-lines leads to a reduced lifespan for production targets. New concepts for robust targets are emerging from the field of High Power Targetry (HPT); one idea being investigated by the HPT R&D Group at Fermilab is an electrospun nanofiber target. As part of their evaluation, samples with different densities were sent to the HiRadMat facility at CERN for thermal shock tests. The samples with the higher density, irradiated under a high intensity beam pulse, exhibit major damage at the impact site whereas those with the lower density show no apparent damage. The exact cause of this failure was unclear at the time. In this paper, we present the results of multiphysics simulations of the thermal shock experienced by the nanofiber targets that suggest the failure originates from the reduced permeability of the high density sample to air flow. The air present in the porous target expands due to heating from the beam, but is unable to flow freely in the high density sample, resulting in a larger back pressure that blows apart the nanofiber mat. We close with a discussion on how to further validate this hypothesis.
title Multiphysics Simulations of Thermal Shock Testing of Nanofibrous High Power Targets
topic Accelerator Physics
url https://arxiv.org/abs/2405.19496