Stress corrosion cracking of iron-nickel-chromium alloys in primary circuit environment of PWR-type reactors
Description
Stress corrosion cracking of Alloy 600 steam generator tubing is a great concern for pressurized water reactors. The mechanism that controls intergranular stress corrosion cracking of Alloy 600 in primary water (lithiated-borated water) has yet to be clearly identified. A study of stress corrosion cracking behaviour, which can identify the main parameters that control the cracking phenomenon, was so necessary to understand the stress corrosion cracking process. Constant extension rate tests, and constant load tests have evidenced that Alloy 600 stress corrosion cracking involves firstly an initiation period, then a slow propagation stage with crack less than 50 to 80 micrometers, and finally a rapid propagation stage leading to failure. The influence of mechanical parameters have shown the next points: - superficial strain hardening and cold work have a strong effect of stress corrosion cracking resistance (decrease of initiation time and increase of crack growth rate), - strain rate was the most suitable parameter for describing the different stage of propagation. The creep behaviour of alloy 600 has shown an increase of creep rate in primary water compared to air, which implies a local interaction plasticity/corrosion. An assessment of the durations of the initiation and the propagation stages was attempted for the whole uniaxial tensile tests, using the macroscopic strain rate: - the initiation time is less than 100 hours and seems to be an electrochemical process, - the durations of the propagation stage are strongly dependent on the strain rate. The behaviour in high primary water temperature of Alloys 690 and 800, which replace Alloy 600, was studied to appraise their margin, and validate their choice. Then the last chapter has to objective to evaluate the crack tip strain rate, in order to better describe the evolution of the different stages of cracking. (author)
Abstract (French)
La corrosion sous contrainte en eau lithiee-boriquee (eau primaire) des tubes en Alliage 600 de generateurs de vapeur des reacteurs a eau sous pression est devenue depuis de nombreuses annees un probleme generique touchant pratiquement l'ensemble du parc nucleaire francais et etranger. Le mecanisme de fissuration sous contrainte intergranulaire de l'Alliage 600 en eau primaire n'etant pas clairement etabli, une etude du comportement en corrosion sous contrainte, permettant d'avoir acces a la connaissance des parametres controlant le phenomene de fissuration, etait donc necessaire a la comprehension du mecanisme. Des essais a charge imposee et de traction lente ont montre que la fissuration sous contrainte comportait une phase d'amorcage, suivie d'une phase de propagation a vitesse lente, et d'une phase de propagation rapide conduisant a la rupture. L'etude de l'influence des parametres mecaniques a permis de degager les points suivants: - les ecrouissages superficiel et volumique ont un role nefaste (reduction de la periode d'amorcage et augmentation des vitesses de fissuration), - la vitesse de deformation plastique (plus que la contrainte) est le parametre mecanique gouvernant la fissuration. L'etude complementaire du comportement en fluage a montre notamment une augmentation de la vitesse de fluage liee a la presence du milieu, traduisant une interaction plasticite/environnement. L'evolution des differentes phases de la fissuration en fonction de la vitesse de deformation a permis d'une part de montrer que le temps d'amorcage est inferieur a 100 heures et de nature electrochimique, que la duree des deux phases de propagation dependait fortement de la vitesse de deformation, et d'autre part d'estimer les marges apportees par les produits de substitution (alliages 690 et 800) et de valider leur choix. enfin le dernier chapitre a pour objet d'estimer les vitesses de deformation en fond de fissure, afin de mieux decrire l'evolution des differentes phases de la fissuration. (auteur)Files
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Additional details
Additional titles
- Original title (French)
- Fissuration par corrosion sous contrainte des Alliages Fer-Nickel-Chrome en milieu primaire de reacteur a eau sous pression
Identifiers
Publishing Information
- Imprint Pagination
- 183 p.
- Report number
- FRNC-TH--9327
INIS
- Country of Publication
- France
- Country of Input or Organization
- France
- INIS RN
- 47056852
- Subject category
- S36: MATERIALS SCIENCE; S21: SPECIFIC NUCLEAR REACTORS AND ASSOCIATED PLANTS;
- Resource subtype / Literary indicator
- Thesis
- Descriptors DEI
- COLD WORKING; CORROSION RESISTANCE; CRACK PROPAGATION; CREEP; DYNAMIC LOADS; INCOLOY 800; INCONEL 600; INCONEL 690; PLASTICITY; STATIC LOADS; STEAM GENERATORS; STRAIN HARDENING; STRAIN RATE; STRESS CORROSION; TEMPERATURE DEPENDENCE; TENSILE PROPERTIES
- Descriptors DEC
- ALLOY-FE46NI33CR21; ALLOY-NI59CR30FE9; ALLOY-NI76CR15FE8; ALLOYS; ALUMINIUM ADDITIONS; ALUMINIUM ALLOYS; BOILERS; CHEMICAL REACTIONS; CHROMIUM ALLOYS; CORROSION; CORROSION RESISTANT ALLOYS; FABRICATION; HARDENING; HEAT RESISTANT MATERIALS; HEAT RESISTING ALLOYS; INCOLOY ALLOYS; INCONEL ALLOYS; IRON ALLOYS; IRON BASE ALLOYS; MATERIALS; MATERIALS WORKING; MECHANICAL PROPERTIES; NICKEL ALLOYS; NICKEL BASE ALLOYS; NIMONIC; TITANIUM ADDITIONS; TITANIUM ALLOYS; TRANSITION ELEMENT ALLOYS; VAPOR GENERATORS
Optional Information
- Notes
- 117 refs.; Available from the INIS Liaison Officer for France, see the 'INIS contacts' section of the INIS website for current contact and e-mail addresses: http://www.iaea.org/inis/Contacts/