Application of holography method for the restoration of the Williams series near the crack tip
Vestnik Samarskogo universiteta. Estestvennonaučnaâ seriâ, Tome 29 (2023) no. 1, pp. 15-46 Cet article a éte moissonné depuis la source Math-Net.Ru

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The article describes the processing of the results of a series of experiments performed by the interference-optical method of holographic interferometry (holographic photoelasticity) aimed at computing the amplitude coefficients of the M. Williams series constituting the stress and displacement fields at the crack tip for several cracked configurations. The main objective of this study is the experimental and computational determination of the coefficients of the M. Williams series for the stress, strain and displacement fields associated with the crack tip in an isotropic linearly elastic medium taking into account regular (non-singular) terms in the multiparameter Williams series. These coefficients are named generalized stress intensity factors. The method of holographic interferometry is shown to be a convenient and efficacious tool for reconstructing the stress field near the tip of the crack, because during the experiment it is possible to obtain two families of interference fringe patterns: absolute retardation fringes (isodromics) for vertical and horizontal polarizations. Experimental outcomes were thoroughly processed using the developed digital application allowing us to accumulate the isodromics orders and coordinates of points belonging to absolute retardations. In this work, absolute retardation fringes in a plate with a central horizontal crack and a crack inclined at different angles are obtained. For each type of experimental sample, the coefficients of the Williams series were calculated taking into account non-singular terms (in the representation of M. Williams, fifteen terms were preserved). A procedure for linearization of nonlinear algebraic equations following from the relations of Favre's law is proposed. By solving the obtained overdeterministic system of linear algebraic equations, the generalized stress intensity factors (coefficients of the M. Williams series) are estimated. Conjointly, the finite element analysis of the specimens with same geometry was effectuated. The experimentally determined values of the Williams series are compared with the results of the finite element calculation of the stress-strain state performed in the SIMULIA Abaqus software.The results of the numerical and experimental studies were found to be quite consistent. It is lucidly shown that it is imperative to keep the higher order terms in the Williams series expansions for the fields associated with the crack tip.
Keywords: holographic interferometry, M. Williams series of the stress field, Favre's law, overdeterministic method, absolute difference lines, brittle fracture mechanics.
Mots-clés : amplitude multipliers
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L. V. Stepanova; D. A. Semenov; G. S. Anisimov. Application of holography method for the restoration of the Williams series near the crack tip. Vestnik Samarskogo universiteta. Estestvennonaučnaâ seriâ, Tome 29 (2023) no. 1, pp. 15-46. http://geodesic.mathdoc.fr/item/VSGU_2023_29_1_a1/

[1] Matvienko Y.G., Two-parameter fracture mechanics, Fizmatlit, M., 2021, 208 pp. (In Russ.)

[2] Saxena A., Advanced fracture mechanics and structural integrity, CRC Press, Boca Raton, 2017, 325 pp. | DOI

[3] Kostuk R.K., Holographic Interferometry, CRC, Boca-Raton, 2019, 352 pp. | DOI

[4] Ostsemin A.A., Deniskin S.A., Sitnikov L.L., Maksimov S.B., Zagrebalov A.A., “Determination of the stress state of bodies with defects by the method of holographic photoelasticity”, Strength of Materials, 1982, no. 10, 77–81 (In Russ.)

[5] Belova O.N., Stepanova L.V., “Photoelastic evaluation of stress fields and coefficients of multi-parameter asymptotic expansion of the crack-tip stress field”, Procedia Structural Integrity, 32 (2022), 32–41 | DOI

[6] 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, 37 (2022), 888–899 | DOI

[7] Frankovsky P., Brodnianska Z., Bocko J., Trebunova M., Kostka J., Kicko M., Carak P., “Application of holographic interferometry in the analysis of stress states in a crack root area”, Applied Optics, 59:13 (2020), D170–D178 | DOI

[8] Xia H., Guo R., Yan F., Chang H., “Real-Time and Quantitative Measurement of Crack-Tip Stress Intensity Factors Using Digital Holographic Interferometry”, Advances in Materials Science and Engineering, 2018 (2018), 1954573 | DOI

[9] Ajovalasit A., “A single hologram technique for the determination of absolute retardations in holographic photoelasticity”, Journal of Strain Analysis for Engineering Design, 10:3 (1975), 148–152 | DOI

[10] Post D., “The generic nature of the absolute-retardation method of photoelasticity”, Experimental Mechanics, 7 (1967), 233–241 | DOI

[11] Sorgutov I.V., “Methods of photoelasticity in assessing the technical condition of structures of buildings and structures”, System technologies, 2021, no. 4(41), 51–54 (In Russ.) | DOI

[12] Ostsemin A.A., Utkin P.B., “Stress-strain state of an inclined elliptical defect in a plate under biaxial loading”, Journal of Applied Mechanics and Technical Physics, 53:2(312) (2012), 246–257 (In English; original in Russian) | DOI | MR | Zbl

[13] Ostsemin A.A., Utkin P.B., “Stress-strain state and stress intensity factor in the vicinity of crack-like defects in plate biaxial tension”, Journal of Applied Mechanics and Technical Physics, 55:6 (2014), 162–172 (In Russ.) | MR

[14] Dilman V.L., Utkin P.B., “Two-parameter method of determining stress intensity factor Ki of crack-like defects using holographic interferometry”, Bulletin of the South Ural State University. Ser. Mathematics. Mechanics. Physics, 14:3 (2022), 60–67 (In Russ.) | DOI

[15] Merzkirch M., Mechanical Characterization Using Digital Image Correlation, Springer, Cham, 2022, 311 pp. | DOI

[16] Kesaev V.V., “Isopachic method with unpolarized light”, Technical Physics Letters, 48:11 (2022), 79–82 (In English; original in Russian) | DOI | DOI

[17] Ramesh K., Developments in Photoelasticity. A renaissance, IOP Publishing, Bristol, 2021, 225 pp. | DOI

[18] Sasikumar S., Ramesh K., “Deep learning approach to evaluate fracture parameters from photoelastic images”, ASME International Mechanical Engineering Congress and Exposition, 12 (2021), IMECE2021-73114, V012T12A013 | DOI

[19] Sanvitale N., Gheller C., Bowman E., “Deep learning assisted particle identification in photoelastic images of granular flows”, Granular Matter, 24 (2022), 65 | DOI

[20] Sergazinov R., Kramar M., “Machine learning approach to force reconstruction in photoelastic materials”, Machine Learning Science and Technology, 2 (2021), 045030 | DOI

[21] Tao B., Wang Y., Qian X. et al., “Photoelastic stress field recovery using deep convolutional neural network”, Frontiers in Bioengineering and Biotechnology, 10 (2022), 818112 | DOI

[22] Zhang Y., Zhang M., Liu K., He Z., Cao L., “Progress of the Computer-generated Holography Based on Deep Learning”, Applied Sciences, 12:17 (2022), 8568 | DOI

[23] Favre H., “Sur une nouvelle methode optique de determination des tensions interieures”, Revue d'Optique, 8(193) (1929), 241–289

[24] Trumbachev V.F., Kutaeva G.S., Technique for studying the stress state of rock mass models by the method of polarization-holographic interferometry, Institut gornogo dela, M., 1984, 53 pp. (In Russ.)

[25] Belova O.N., Stepanova L.V., “Computational and experimental identification of coefficients of the Williams series expansion by considering higher order terms in the cracked specimens through digital image analysis”, Procedia Structural Integrity, 40 (2022), 46–60 | DOI

[26] Karihaloo B.L., Abdalla H., Xiao Q.Z., “Coefficients of the crack tip asymptotic field for wedge splitting specimens”, Engineering Fracture Mechanics, 70:17 (2003), 2407–2420 | DOI

[27] Karihaloo B.L., Xiao Q.Z., “Accurate determination of the coefficients of elastic crack tip asymptotic field by a hybrid crack element with p-adaptivity”, Engineering Fracture Mechanics, 68:15 (2001), 1609–1630 | DOI

[28] Karihaloo B.L., Xiao Q.Z., “Higher order terms of the crack tip asymptotic field for a wedge-splitting specimen”, International Journal of Fracture, 112:2 (2001), 129–137 | DOI

[29] Hello G., Tahar M.B., Roelandt J.-M., “Analytical determination of coefficients in crack-tip stress expansions for a finite crack in an infinite plane medium”, International Journal of Solids and Structures, 49:3–4 (2012), 556–566 | DOI

[30] Hello G., “Derivation of complete crack-tip expansion from Westergaard-Sanford solutions”, International Journal of Solids and Structures, 144–145 (2018), 265–275 | DOI

[31] Melching, D., Breibarth E., “Advanced cracked tip field characterization using conjugate wirk integrals”, International Journal of Fatigue, 169 (2023), 107501 | DOI

[32] Stepanova L.V., Belova O.N., “The digital photoelasticity method and finite element analysis for determination of the multi-point crack-tip field series expansions for notched semi-disks”, Journal of Physics: Conference Series, 1745 (2021), 012104 | DOI

[33] Belova O.N., Stepanova L.V., “Determination of the coefficients of asymptotic crack-tip stress expansion. Mixed mode loading of the plate”, Vestnik Samarskogo universiteta. Estestvennonauchnaia seriia = Vestnik of Samara University. Natural Science Series, 26:3 (2020), 40–62 | DOI | MR

[34] Stepanova L.V., Dolgikh V.S., Bakhareva Yu.N., “Digital processing of the results of optoelectronic measurements. The photoelasticity method and its application for determination of coefficients of the multiparameter asymptotic Williams expansion of the stress field”, Journal of Samara State Technical University. Ser. Physical and Mathematical Sciences, 21:4 (2017), 717–735 (In Russ.) | DOI

[35] Stepanova L.V., “Experimental determination and finite element analysis of coefficients of the multi-parameter Williams series expansion in the vicinity of the crack tip in linear elastic materials. Part II”, PNRPU Mechanics Bulletin, 2021, no. 1, 72–85 (In Russ.) | DOI