Spatial corrections for reactivity measurement in lead accelerator driven system

One of the key areas of the development of Accelerator Driven Systems (ADS) are reactivity monitoring techniques. Since the measurement in the future industrial reactor have to be made in the real time applied methods should be accurate, simple and robust. Therefore methods based on point kinetic mo...

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Main Authors: Gajda Paweł, Orliński Michał
Format: Article
Language:English
Published: EDP Sciences 2017-01-01
Series:E3S Web of Conferences
Online Access:https://doi.org/10.1051/e3sconf/20171401049
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spelling doaj-ca8ea08d21e441aaa24d0feadffe9e362021-02-02T07:42:23ZengEDP SciencesE3S Web of Conferences2267-12422017-01-01140104910.1051/e3sconf/20171401049e3sconf_ef2017_01049Spatial corrections for reactivity measurement in lead accelerator driven systemGajda Paweł0Orliński Michał1AGH University of Science and Technology, Faculty of Energy and Fuels, Department of Nuclear EnergyAGH University of Science and Technology, Faculty of Energy and Fuels, Department of Nuclear EnergyOne of the key areas of the development of Accelerator Driven Systems (ADS) are reactivity monitoring techniques. Since the measurement in the future industrial reactor have to be made in the real time applied methods should be accurate, simple and robust. Therefore methods based on point kinetic model are considered. Necessary experimental validation of selected methods was carried out within research project FP7 FREYA using VENUS-F reactor. This paper presents results obtained using the Sjöstrand method and the source multiplication method. Since ADS core behaviour differs from the point kinetics obtained reactivity value depends on the detector position in the system. From the results it is clear that measurement results strongly depend on the position of the detector in the system. For the Sjöstrand method these spatial effects can be successfully corrected using MCNP-calculated correction factors. Those correction factors do not change within the range of reactivity changes covered in the experiments. Spatial effects affecting source multiplication method are more complex and they depend also on neutron flux distribution in the core.https://doi.org/10.1051/e3sconf/20171401049
collection DOAJ
language English
format Article
sources DOAJ
author Gajda Paweł
Orliński Michał
spellingShingle Gajda Paweł
Orliński Michał
Spatial corrections for reactivity measurement in lead accelerator driven system
E3S Web of Conferences
author_facet Gajda Paweł
Orliński Michał
author_sort Gajda Paweł
title Spatial corrections for reactivity measurement in lead accelerator driven system
title_short Spatial corrections for reactivity measurement in lead accelerator driven system
title_full Spatial corrections for reactivity measurement in lead accelerator driven system
title_fullStr Spatial corrections for reactivity measurement in lead accelerator driven system
title_full_unstemmed Spatial corrections for reactivity measurement in lead accelerator driven system
title_sort spatial corrections for reactivity measurement in lead accelerator driven system
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2017-01-01
description One of the key areas of the development of Accelerator Driven Systems (ADS) are reactivity monitoring techniques. Since the measurement in the future industrial reactor have to be made in the real time applied methods should be accurate, simple and robust. Therefore methods based on point kinetic model are considered. Necessary experimental validation of selected methods was carried out within research project FP7 FREYA using VENUS-F reactor. This paper presents results obtained using the Sjöstrand method and the source multiplication method. Since ADS core behaviour differs from the point kinetics obtained reactivity value depends on the detector position in the system. From the results it is clear that measurement results strongly depend on the position of the detector in the system. For the Sjöstrand method these spatial effects can be successfully corrected using MCNP-calculated correction factors. Those correction factors do not change within the range of reactivity changes covered in the experiments. Spatial effects affecting source multiplication method are more complex and they depend also on neutron flux distribution in the core.
url https://doi.org/10.1051/e3sconf/20171401049
work_keys_str_mv AT gajdapaweł spatialcorrectionsforreactivitymeasurementinleadacceleratordrivensystem
AT orlinskimichał spatialcorrectionsforreactivitymeasurementinleadacceleratordrivensystem
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