Пастернак Ярослав Михайлович: відмінності між версіями
Матеріал з wiki.vnu.edu.ua
| (Не показані 2 проміжні версії цього користувача) | |||
| Рядок 38: | Рядок 38: | ||
'''Публікації в фахових виданнях''' | '''Публікації в фахових виданнях''' | ||
'' | ''2021'' | ||
* Pasternak I., Turchyn I., Hutsaylyuk V., Sulym H. (2021) Modelling of the Stress–Strain State of a Viscoelastic Rectangular Plate in Condition Combine Load. In: Hošková-Mayerová Š., Flaut C., Maturo F. (eds) Algorithms as a Basis of Modern Applied Mathematics. Studies in Fuzziness and Soft Computing, vol 404. Springer, Cham. P. 337–362. https://doi.org/10.1007/978-3-030-61334-1_17 | * Pasternak I., Turchyn I., Hutsaylyuk V., Sulym H. (2021) Modelling of the Stress–Strain State of a Viscoelastic Rectangular Plate in Condition Combine Load. In: Hošková-Mayerová Š., Flaut C., Maturo F. (eds) Algorithms as a Basis of Modern Applied Mathematics. Studies in Fuzziness and Soft Computing, vol 404. Springer, Cham. P. 337–362. https://doi.org/10.1007/978-3-030-61334-1_17 | ||
| Рядок 67: | Рядок 58: | ||
* Yasniy O., Pasternak Ia., Didych I., Fedak S., Tymoshchuk D. Methods of jump-like creep modeling of AMg6 aluminum alloy. Procedia Structural Integrity. 2023. 48. P. 149–154. https://doi.org/10.1016/j.prostr.2023.07.141 | * Yasniy O., Pasternak Ia., Didych I., Fedak S., Tymoshchuk D. Methods of jump-like creep modeling of AMg6 aluminum alloy. Procedia Structural Integrity. 2023. 48. P. 149–154. https://doi.org/10.1016/j.prostr.2023.07.141 | ||
* Kushnir R., Pasternak I., Sulym H. 3D Time-Harmonic Elastic Waves Scattering on Shell-Like Rigid Movable Inclusions. Advances in Mechanics. Advanced Structured Materials 2023. vol 191. Springer, Cham. P. 313–327. https://doi.org/10.1007/978-3-031-37313-8_18 | * Kushnir R., Pasternak I., Sulym H. 3D Time-Harmonic Elastic Waves Scattering on Shell-Like Rigid Movable Inclusions. Advances in Mechanics. Advanced Structured Materials 2023. vol 191. Springer, Cham. P. 313–327. https://doi.org/10.1007/978-3-031-37313-8_18 | ||
''2024'' | ''2024'' | ||
| Рядок 74: | Рядок 64: | ||
* Pasternak V., Sulym H., Pasternak Ia.M., Hotsyk I. Extended Stroh formalism for plane problems of thermoelasticity of quasicrystals with applications to Green’s functions and fracture mechanics. International Journal of Engineering Science. 2024. Vol. 203. 104124. P. 1–19. https://doi.org/10.1016/j.ijengsci.2024.104124 | * Pasternak V., Sulym H., Pasternak Ia.M., Hotsyk I. Extended Stroh formalism for plane problems of thermoelasticity of quasicrystals with applications to Green’s functions and fracture mechanics. International Journal of Engineering Science. 2024. Vol. 203. 104124. P. 1–19. https://doi.org/10.1016/j.ijengsci.2024.104124 | ||
''2025'' | |||
* Pasternak V., Pasternak I.M., Sulym H., Hotsyk I., Pasternak R. Stress-free temperature fields in thermoelastic quasicrystals. International Journal of Solids and Structures. 2025. 316. P. 113390. https://doi.org/10.1016/j.ijsolstr.2025.113390 | |||
* Kushnir R., Sulym H., Pasternak I., Kozelko V. Boundary element method for 3D fracture mechanics analysis in quasicrystal solids under thermal loading. Procedia Struct Integr. 2025.68. P. 32-38. https://doi.org/10.1016/j.prostr.2025.06.019 | |||
* Yasniy O., Korniichuk A., Didych I., Tymoshchuk D., Pasternak I. Failure criterion for thread-like fibers in a thermoelastic medium. Procedia Struct Integr. 2025. 68. P. 126–131. https://doi.org/10.1016/j.prostr.2025.06.032 | |||
* Yasniy O., Tymoshchuk D., Didych I., Iasnii V., Pasternak I. Modelling the properties of shape memory alloys using machine learning methods. Procedia Struct Integr. 2025. 68. P. 132–138. https://doi.org/10.1016/j.prostr.2025.06.033 | |||
* Індика С., Бєлікова Н., Цьось А., Пастернак Я. Прогнозування фізичної активності та якості життя працездатного населення. Фізичне виховання, спорт і культура здоров’я у сучасному суспільстві. 2025. 1(69). С.26-35. https://doi.org/10.29038/2220-7481-2025-01-26-35 | |||
* Pasternak V., Sulym H., Korniichuk A., Pasternak I. A Well-Conditioned Spectral Galerkin–Levin Method for Highly Oscillatory Integrals. AppliedMath 2025, 5, 95. https://doi.org/10.3390/appliedmath5030095 | |||
