Modelling intergranular segregation in nuclear pressure vessel ferritic steels

The intergranular segregation of P atoms in steel is a major cause of nuclear pressure vessel (NPV) steel embrittlement. In this thesis, we have employed a range of computer simulation techniques to investigate radiation events, which take place in the NPV and their effect on the segregation of P at...

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Main Author: Hurchand, Hurryramsingh
Published: Loughborough University 2005
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Online Access:https://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.416686
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spelling ndltd-bl.uk-oai-ethos.bl.uk-4166862018-11-08T03:20:57ZModelling intergranular segregation in nuclear pressure vessel ferritic steelsHurchand, Hurryramsingh2005The intergranular segregation of P atoms in steel is a major cause of nuclear pressure vessel (NPV) steel embrittlement. In this thesis, we have employed a range of computer simulation techniques to investigate radiation events, which take place in the NPV and their effect on the segregation of P atoms to the grain boundaries (GBs). Radiation events were simulated in a perfect bcc Fe lattice using the classical molecular dynamic technique. We have tested two recently developed interatomic potential models, a the second nearest-neighbour modified embedded atom method (2NN MEAM) and a new EAM potential against a conventional EAM potential for the simulation of displacement cascades. Radiation simulations in the energy range of 0.2–2 keV showed that the ballistic and the annealing phase of the cascade were sensitive to the interatomic potential employed. However, the number of Frenkel pairs produced was predicted to be similar by the three potentials, with slightly fewer for the new EAM potential.621.483320113Loughborough Universityhttps://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.416686https://dspace.lboro.ac.uk/2134/34675Electronic Thesis or Dissertation
collection NDLTD
sources NDLTD
topic 621.483320113
spellingShingle 621.483320113
Hurchand, Hurryramsingh
Modelling intergranular segregation in nuclear pressure vessel ferritic steels
description The intergranular segregation of P atoms in steel is a major cause of nuclear pressure vessel (NPV) steel embrittlement. In this thesis, we have employed a range of computer simulation techniques to investigate radiation events, which take place in the NPV and their effect on the segregation of P atoms to the grain boundaries (GBs). Radiation events were simulated in a perfect bcc Fe lattice using the classical molecular dynamic technique. We have tested two recently developed interatomic potential models, a the second nearest-neighbour modified embedded atom method (2NN MEAM) and a new EAM potential against a conventional EAM potential for the simulation of displacement cascades. Radiation simulations in the energy range of 0.2–2 keV showed that the ballistic and the annealing phase of the cascade were sensitive to the interatomic potential employed. However, the number of Frenkel pairs produced was predicted to be similar by the three potentials, with slightly fewer for the new EAM potential.
author Hurchand, Hurryramsingh
author_facet Hurchand, Hurryramsingh
author_sort Hurchand, Hurryramsingh
title Modelling intergranular segregation in nuclear pressure vessel ferritic steels
title_short Modelling intergranular segregation in nuclear pressure vessel ferritic steels
title_full Modelling intergranular segregation in nuclear pressure vessel ferritic steels
title_fullStr Modelling intergranular segregation in nuclear pressure vessel ferritic steels
title_full_unstemmed Modelling intergranular segregation in nuclear pressure vessel ferritic steels
title_sort modelling intergranular segregation in nuclear pressure vessel ferritic steels
publisher Loughborough University
publishDate 2005
url https://ethos.bl.uk/OrderDetails.do?uin=uk.bl.ethos.416686
work_keys_str_mv AT hurchandhurryramsingh modellingintergranularsegregationinnuclearpressurevesselferriticsteels
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