|   [1] Noda, N. A. and Xu, C. Controlling parameter of the stress intensity factors for a planar interfacial crack in three-dimensional bimaterials. International Journal of Solids and Structures, 45, 1017-1031(2008) 
[2] Tweed, J., Das, S., and Rooke, D. The stress intensity factors of a radial crack in a finite elastic disc. International Journal of Engineering Science, 10, 323-335(1972) 
[3] Tweed, J. and Rooke, D. The stress intensity factor of an edge crack in a finite elastic disc. International Journal of Engineering Science, 11, 65-73(1973) 
[4] Ma, K. P. and Liu, C. T. Semi-weight function method on computation of stress intensity factors in dissimilar materials. Applied Mathematics and Mechanics (English Edition), 25(11), 1241-1248(2004) DOI 10.1007/BF02438279 
[5] Jones, I. and Rothwell, G. Reference stress intensity factors with application to weight functions for internal circumferential cracks in cylinders. Engineering Fracture Mechanics, 68, 435-454(2001) 
[6] Seifi, R. Stress intensity factors for internal surface cracks in autofrettaged functionally graded thick cylinders using weight function method. Theoretical and Applied Fracture Mechanics, 75, 113-123(2015) 
[7] Chen, A. J. and Zeng, W. J. Weight function for stress intensity factors in rotating thickwalled cylinder. Applied Mathematics and Mechanics (English Edition), 27(11), 29-35(2006) DOI 10.1007/s10483-006-0105-1 
[8] Wang, Y., Tham, L., Lee, P., and Tsui, Y. A boundary collocation method for cracked plates. Computers and Structures, 81, 2621-2630(2003) 
[9] Fett, T. Stress intensity factors and T -stress for single and double-edge-cracked circular disks under mixed boundary conditions. Engineering Fracture Mechanics, 69, 69-83(2002) 
[10] Kotousov, A., Berto, F., Lazzarin, P., and Pegorin, F. Three-dimensional finite element mixed fracture mode under anti-plane loading of a crack. Theoretical and Applied Fracture Mechanics, 62, 26-33(2012) 
[11] Tsang, D., Oyadiji, S., and Leung, A. Two-dimensional fractal-like finite element method for thermoelastic crack analysis. International Journal of Solids and Structures, 44, 7862-7876(2007) 
[12] Branco, R. and Antunes, F. Finite element modelling and analysis of crack shape evolution in mode-I fatigue middle cracked tension specimens. Engineering Fracture Mechanics, 75, 3020-3037(2008) 
[13] Sanati, H., Amini, A., Reshadi, F., Soltani, N., Faraji, G., and Zalnezhad, E. The stress intensity factors (SIFs) of cracked half-plane specimen in contact with semi-circular object. Theoretical and Applied Fracture Mechanics, 75, 104-112(2015) 
[14] Maschke, H. G. and Kuna, M. A review of boundary and finite element methods in fracture mechanics. Theoretical and Applied Fracture Mechanics, 4, 181-189(1985) 
[15] Mavrothanasis, F. and Pavlou, D. Mode-I stress intensity factor derivation by a suitable Green's function. Engineering Analysis with Boundary Elements, 31, 184-190(2007) 
[16] Belytschko, T. and Black, T. Elastic crack growth in finite elements with minimal remeshing. International Journal for Numerical Methods in Engineering, 45, 601-620(1999) 
[17] Fett, T. and Bahr, H. Mode I stress intensity factors and weight functions for short plates under different boundary conditions. Engineering Fracture Mechanics, 62, 593-606(1999) 
[18] Vigdergauz, S. An effective method for computing the elastic field in a finite cracked disk. Engineering Fracture Mechanics, 53, 545-556(1996) 
[19] Rooke, D. and Tweed, J. The stress intensity factors of a radial crack in a finite rotating elastic disc. International Journal of Engineering Science, 10, 709-714(1972) 
[20] Blauel, J., Beinert, J., and Wenk, M. Fracture-mechanics investigations of cracks in rotating disks. Experimental Mechanics, 17, 106-112(1977) 
[21] Chan, S., Tuba, I., and Wilson, W. On the finite element method in linear fracture mechanics. Engineering Fracture Mechanics, 2, 1-17(1970) 
[22] Gowhari-Anaraki, A., Djavanroodi, F., and Shadlou, S. Estimation of C*-integral for radial cracks in annular discs under constant angular velocity and internal pressure. American Journal of Applied Sciences, 5, 997-1004(2008) 
[23] Lorenzo, J. and Cartwright, D. Boundary element weight function analysis of a strip yield crack in a rotating disk. Theoretical and Applied Fracture Mechanics, 21, 241-250(1994) 
[24] Xu, Y. L. Stress intensity factors of a radial crack in a rotating compound disk. Engineering Fracture Mechanics, 44, 409-423(1993) 
[25] Bowie, O. L. and Neal, D. M. A modified mapping-collocation technique for accurate calculation of stress intensity factors. International Journal of Fracture Mechanics, 6, 199-206(1970) 
[26] Isida, M. Arbitrary loading problems of doubly symmetric regions containing a central crack. Engineering Fracture Mechanics, 7, 505-514(1975) 
[27] Pook, L. P., Berto, F., Campagnolo, A., and Lazzarin, P. Coupled fracture mode of a cracked disc under anti-plane loading. Engineering Fracture Mechanics, 128, 22-36(2014) 
[28] Lin, X. and Smith, R. Fatigue growth prediction of internal surface cracks in pressure vessels. Journal of Pressure Vessel Technology, 120, 17-23(1998) 
[29] Aliha, M., Bahmani, A., and Akhondi, S. Numerical analysis of a new mixed mode I/Ⅲ fracture test specimen. Engineering Fracture Mechanics, 134, 95-110(2015) 
[30] Knott, J. F. Fundamentals of Fracture Mechanics, Butterworths, London (1973) 
[31] Hellen, T. On the method of virtual crack extensions. International Journal for Numerical Methods in Engineering, 9, 187-207(1975) 
[32] Miyazaki, N., Ikeda, T., Soda, T., and Munakata, T. Stress intensity factor analysis of interface crack using boundary element method-application of contour-integral method. Engineering Fracture Mechanics, 45, 599-610(1993) 
[33] Anderson, T. L. and Anderson, T. Fracture Mechanics:Fundamentals and Applications, CRC Press, Boca Raton (2005) 
[34] Baker, A., Callinan, R., Davis, M., Jones, R., and Williams, J. Repair of Mirage Ⅲ aircraft using the BFRP crack-patching technique. Theoretical and Applied Fracture Mechanics, 2, 1-15(1984) 
[35] Baker, A. Repair of cracked or defective metallic aircraft components with advanced fibre composites-an overview of Australian work. Composite Structures, 2, 153-181(1984) 
[36] Baker, A. Bonded composite repair of fatigue-cracked primary aircraft structure. Composite Structures, 47, 431-443(1999) 
[37] Baker, A. Crack Patching:Experimental Studies, Practical Applications, Bonded Repair of Aircraft Structures, Springer, Berlin, 107-173(1988) 
[38] Rose, L. An application of the inclusion analogy for bonded reinforcements. International Journal of Solids and Structures, 17, 827-838(1981) 
[39] Jones, R. and Callinan, R. Finite element analysis of patched cracks. Journal of Structural Mechanics, 7, 107-130(1979) 
[40] Chung, K. H. and Yang, W. H. Fracture mechanics analysis on the bonded repair of a skin/stiffener with an inclined central crack. Composite Structures, 55, 269-276(2002) 
[41] Bouiadjra, B. B., Belhouari, M., and Serier, B. Computation of the stress intensity factors for repaired cracks with bonded composite patch in mode I and mixed mode. Composite Structures, 56, 401-406(2002) 
[42] Umamaheswar, T. V. and Singh, R. Modelling of a patch repair to a thin cracked sheet. Engineering Fracture Mechanics, 62, 267-289(1999) 
[43] Nami, M. R. and Eskandari, H. Stress intensity factors in a rotating impeller containing semielliptical surface crack. Mechanics Based Design of Structures and Machines, 40, 1-18(2012)  |