1. Nejati M., Ghouli S, Ayatollahi M.R. Crack tip asymptotic fields in anisotropic planes: Importance of higher order terms // Applied Mathematical Modelling. 2021. Vol. 91. P. 837-862. DOI: 10.1016/j.apm.2020.09.025 EDN: JZSZVA
2. Zhu C., Ren T., Zhang Q. Nonlinear optimization DIC method inspired by unsupervised learning for high order displacement measurement // Optics and Lasers in Engineering. 2024. Vol. 178. 108250. EDN: WDHVVN
3. Gonzales G.L.G., Antunes F.V., Sergio E.R., Vasco-Olmo J.M., Diaz F.A., Neto D.M. A comparison between FEM predictions and DIC results of crack tip displacement field in CT specimens made of titanium // Theoretical and Applied Fracture Mechanics. 2023. Vol. 127. P. 104055. DOI: 10.1016/j.tafmec.2023.104055 EDN: WGQNCA
4. Lammens B., Portemont G., Berthe J., Seghir R., Rethore J. Determining singular and non-singular Williams’ expansion terms from full-field measurements: Consideration of structural effects on fracture behavior. // Theoretical and Applied Fracture Mechanics. 2024. Vol. 130. P. 104304. DOI: 10.1016/j.tafmec.2024.104304 EDN: WFNKGL
5. Shi L., Olutunde Oyadiji S. Determination of notch stress intensity factors under mode I loading using the 3D-DIC and finite element over-deterministic methods // Engineering Fracture Mechanics. 2024. Vol. 296. P. 109852. DOI: 10.1016/j.engfracmech.2024.109852 EDN: ORCGVW
6. Belova O.N., Stepanova L.V. Holographic interferometry experiments and numerical analyses of the stress field on the Williams series expansion: higher - order terms // Procedia Structural Integrity. 2022. Vol 39. P. 761-769. DOI: 10.1016/j.prostr.2022.03.150 EDN: SCYWGC
7. Farahani B.V., Direito F., Sousa P.J., Tavares P.J., Infante V., Moreira P.P.M.G. Crack tip monitoring by multiscale optical experimental techniques // International Journal of Fatigue. 2022. Vol. 155. P. 106610. DOI: 10.13140/RG.2.2.29006.18244 EDN: VEXXMO
8. Farahani B.V., Direito F., Sousa P.J., Tavares P.J., Infante V., Moreira P.P.M.G. Electronic Speckle Pattern Interferometry for fatigue crack monitoring // Procedia Structural Integrity. 2022. Vol. 37. P. 873-879. DOI: 10.1016/j.prostr.2022.02.021 EDN: BAYCCR
9. Patil P.P., Vyasarayani C.P., Ramji M. Linear least squares approach for evaluating crack tip fracture parameters using isochromatic and isoclinic data from digital photoelasticity // Optics and Lasers in Engineering. 2017. Vol. 93. P. 182-194. DOI: 10.1016/j.optlaseng.2017.02.003
10. Belova O.N., Stepanova L.V., Kosygina L.N. Experimental study on the interaction between two cracks by digital photoelasticity method: construction of the Williams series expansion // Procedia Structural Integrity. 2022. Vol. 37. P. 888-899. DOI: 10.1016/j.prostr.2022.02.023 EDN: HGPBDO
11. Xu L.R. Experimental studies on the static sharp notch effects during dynamic crack kinking/nucleation at the material interfaces // Theoretical and Applied Fracture Mechanics. 2024. P. 104476. EDN: WXHLTW
12. Hou C. Determination of SIFs and T-stress using an over-deterministic method based on stress fields: Static and dynamic // Engineering Fracture Mechanics. 2021. Vol. 242. P. 107455. DOI: 10.1016/j.engfracmech.2020.107455 EDN: NTPXGQ
13. Shi L., Olutunde Oyadiji S. Determination of notch stress intensity factors under mode I loading using the 3D-DIC and finite element over-deterministic methods // Engineering Fracture Mechanics. 2024. Vol. 296. P. 109852. DOI: 10.1016/j.engfracmech.2024.109852 EDN: ORCGVW
14. Ayatollahi M.R., Nejati M., Ghouli S. The finite element over-deterministic method to calculate the coefficients of crack tip asymptotic fields in anisotropic planes // Engineering Fracture Mechanics. 2020. Vol. 231. P. 106982. DOI: 10.1016/j.engfracmech.2020.106982 EDN: YEJNUW
15. de Saint-Venant. Memoire sur la distribution des elasticites autour de chaque point d’un solide ou d’un milieu de contexture quelconque, particulierement lorsqu’il est amorphe sans etre isotrope // Journal de Mathematiques Pures et Appliquees. 1863. Serie 2. Vol. 8. P. 353-430. URL: http://www.numdam.org/item/JMPA_1863_2_8_353_0.
16. The Materials Project. URL: https://next-gen.materialsproject.org (дата обращения: 10.01.2024).
17. Ramesh K., Gupta S., Kelkar A.A. Evaluation of stress field parameters in fracture mechanics by photoelasticity-Revisited // Engineering Fracture Mechanics. 1997. Vol. 56, issue 1. P. 25-41; 43-45. DOI: 10.1016/S0013-7944(96)00098-7 EDN: AFWXUT