MY185709A - Method for the in situ passivation of the steel surfaces of a nuclear reactor - Google Patents

Method for the in situ passivation of the steel surfaces of a nuclear reactor

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Publication number
MY185709A
MY185709A MYPI2016700876A MYPI2016700876A MY185709A MY 185709 A MY185709 A MY 185709A MY PI2016700876 A MYPI2016700876 A MY PI2016700876A MY PI2016700876 A MYPI2016700876 A MY PI2016700876A MY 185709 A MY185709 A MY 185709A
Authority
MY
Malaysia
Prior art keywords
core
passivation
heat transfer
transfer medium
conditions
Prior art date
Application number
MYPI2016700876A
Inventor
Petr Nikiforovich Martynov
Radomir Shamilievich Askhadullin
Konstantin Dmitrievich IVANOV
Aleksandr Urievich Legkih
Aleksey Nikolaevich Storozhenko
Aleksandr Ivanovich Filin
Sergey Viktorovich Bulavkin
Said Mirfaisovich ShARIKPULOV
Stepan Artemovich Borovitsky
Original Assignee
Akme Eng Joint Stock Co
Priority date (The priority date is an assumption and is not a legal conclusion. Google has not performed a legal analysis and makes no representation as to the accuracy of the date listed.)
Filing date
Publication date
Application filed by Akme Eng Joint Stock Co filed Critical Akme Eng Joint Stock Co
Priority claimed from PCT/RU2014/000171 external-priority patent/WO2015047131A1/en
Publication of MY185709A publication Critical patent/MY185709A/en

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Abstract

The invention relates to the field of nuclear technology, and specifically to a method for the in situ passivation of steel surfaces. The method consists in installing, in a position intended for a regular core, a core simulator in the form of a model of the core, which models the shape thereof, the relative position of the core components, and also the mass characteristics thereof; next, the reactor is filled with a heavy liquid metal heat transfer medium, the heat transfer medium is heated to a temperature which provides for the conditions of passivation, and in situ passivation is carried out in two stages, the first of which includes an isothermal passivation mode in conformity with the conditions determined for this stage, and the second mode includes non-isothermal passivation, which is carried out under different conditions, after which the core simulator is removed and the regular core is installed in the place thereof. The method provides for the corrosion-resistance of steel elements in a heavy liquid metal heat transfer medium environment and permits a decrease in the maximum rate of oxygen consumption during the initial period of operation of a nuclear reactor
MYPI2016700876A 2013-09-30 2014-03-19 Method for the in situ passivation of the steel surfaces of a nuclear reactor MY185709A (en)

Applications Claiming Priority (2)

Application Number Priority Date Filing Date Title
RU2013413712 2013-09-30
PCT/RU2014/000171 WO2015047131A1 (en) 2013-09-30 2014-03-19 Method for the in situ passivation of the steel surfaces of a nuclear reactor

Publications (1)

Publication Number Publication Date
MY185709A true MY185709A (en) 2021-05-31

Family

ID=81329902

Family Applications (1)

Application Number Title Priority Date Filing Date
MYPI2016700876A MY185709A (en) 2013-09-30 2014-03-19 Method for the in situ passivation of the steel surfaces of a nuclear reactor

Country Status (1)

Country Link
MY (1) MY185709A (en)

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