

An effective method for evaluating highand low-temperature fatigue of structural elements
https://doi.org/10.22349/1994-6716-2024-120-4-162-173
Abstract
For geometrically complex designs of nuclear power plants, the justification of cyclic strength based on modern approaches is a time-consuming and resource-intensive process. From a practical point of view, the regulatory documents on the justification of the strength of nuclear power structures suggest the most simplified approach. The article numerically substantiates the inapplicability of such an approach for the case of non-isothermal cyclic loading. In this regard, a new effective methodology has been developed for assessing the fatigue of structures under isothermal or non-isothermal cyclic loads. Based on numerical elastic-plastic calculations of classical problems of deformation of cylindrical rods with deep annular incisions of various sharpness, the effectiveness of the developed technique has been confirmed.
About the Authors
O. Yu. VilenskyRussian Federation
Cand Sc. (Eng).
15 Burnakovsky proezd, 603074 Nizhny Novgorod
D. L. Osetrov
Russian Federation
Cand. Sc. (Phys-Math).
15 Burnakovsky proezd, 603074 Nizhny Novgorod
E. Yu. Poverennov
Russian Federation
Cand. Sc. (Phys-Math).
15 Burnakovsky proezd, 603074 Nizhny Novgorod
References
1. PNAE G-7-002-86: Normy rascheta na prochnost oborudovaniya i truboprovodov atomnykh energeticheskikh ustanovok [Standards for calculating the strength of equipment and pipelines of nuclear power plants], Gosatomnadzor SSSR, Moscow: Energoatomizdat, 1989.
2. State Standart GOST R 59115.10-2021: Obosnovanie prochnosti oborudovaniya i truboprovodov atomnykh energeticheskikh ustanovok. Utochnenny poverochny raschet na stadii proektirovaniya [Justification of the strength of equipment and pipelines of nuclear power plants. Refined verification calculation at the design stage], Rosstandart, Moscow: RST, 2021.
3. Gokhfeld, D.A., Getsov, L.B., Kononov, K.M., et al., Mekhanicheskie svoistva staley i splavov pri nestatsionarnom nagruzhenii [Mechanical properties of steels and alloys under unsteady loading]: reference book, Yekaterinburg: UrO RAN, 1996, p. 408.
4. Chaboche, J.-L., Lemaitre, J., Mechanics of Solid Materials, Cambridge University Press, 1990, p. 556.
5. Bondar, V.S., Neuprugost. Varianty teorii [Inelasticity. Variants of the theory], Moscow: FIZMATLIT, 2004, p. 144.
6. Kazakov, D.A., Kapustin, S.A., Korotkikh, Yu.G., Modelirovanie protsessov deformirovaniya i razrusheniya materialov i konstruktsiy [Modeling of processes of deformation and destruction of materials and structures], N. Novgorod: Nizhegorodsky University, 1994.
7. Malinin, N.N., Prikladnaya teoriya plastichnosti i polzuchesti [Applied theory of plasticity and creep], Moscow: Mashinostroenie, 1975.
8. Veyvoda S., Vlk, M., Filatov, V.M., Raschet sosudov na tsiklicheskuyu prochnost s uchetom istorii nagruzheniya [Calculation of vessels for cyclic strength taking into account loading history], Problemy prochnosti, 1988, No 3, pp. 87–91.
9. Belokrylov, P.Yu., Bankrutenko, V. V., Vilensky, O.Yu., Tatarsky, Yu.N., Osetrov, D.L., Programma rascheta tsiklicheskoy i dlitelnoy tsiklicheskoy prochnosti VTU [Program for calculating cyclic and long-term cyclic strength VTU]: Svidetelstvo o registratsii programmy dlya EVM RU 2016611384, 01.02.2016, Appl. No 2015618387 dated 14.09.2015.
Review
For citations:
Vilensky O.Yu., Osetrov D.L., Poverennov E.Yu. An effective method for evaluating highand low-temperature fatigue of structural elements. Voprosy Materialovedeniya. 2024;(4(120)):162-173. (In Russ.) https://doi.org/10.22349/1994-6716-2024-120-4-162-173