Issue34

Y. Sumi, Frattura ed Integrità Strutturale, 34 (2015) 43-59; DOI: 10.3221/IGF-ESIS.34.04 57 (1970) 69–82. (in Russian) [3] Goldstein, R.V., Salganik, R.L., Brittle fracture of solids with arbitrary cracks, Int J Fract, 10 (1974) 507–523. [4] Cotterell, B., Rice. J.R., Slightly curved or kinked cracks, Int J Fract, 16 (1980) 155–169. [5] Sumi, Y., Nemat-Nasser, S., Keer, L.M., On crack branching and curving in a finite body, Int J Fract, 21 (1983) 67– 79; Erratum, Int J Fract, 24 (1984) 159. [6] Sumi, Y., A note on the first order perturbation solution of a straight crack with slightly branched and curved extension under a general geometric and loading condition, Eng Fract Mech, 24 (1986) 479–481. [7] Sumi, Y., A second order perturbation solution of a non-collinear crack and its application to crack path prediction of brittle fracture in weldment, Naval Architect Ocean Eng, 28 (1990) 143–156. [8] Karihaloo, B.L., Keer, L.M., Nemat-Nasser, S., Oranratnachai, A., Approximate description of crack kinking and curving. J Appl Mech, 48 (1981) 515–519. [9] Wu, C.H., Fracture under combined loads by maximum-energy-release-rate criterion, J Appl Mech 45 (1978) 553– 558. [10] Amestoy, M., Leblond, J.B., Crack paths in plane situations-II. Detailed form of the expansion of the stress intensity factors. Int J Solids Struct, 29 (1992) 465–501. [11] Erdogan, F., Sih, G.C., On crack extension in plates under plane loading and transverse shear, J Basic Eng, 85 (1963) 519–527. [12] Sumi, Y., Nemat-Nasser, S., Keer, L.M., On crack path stability in a finite body, Eng Fract Mech, 22 (1985) 759–771. [13] Leevers, P.S., Radon, J.C., Culver, L.E., Fracture trajectories in a biaxially stressed plate, J Mech Phys Solids, 24 (1976) 381–395. [14] Broberg, K.B., On crack paths, Eng Fract Mech, 28 (1987) 663–679. [15] Pook, L.P., Crack Paths, WIT Press, Southampton, (2002). [16] Sumi, Y., Mathematical and Computational Analyses of Cracking Formation, Springer, Tokyo, (2014). [17] Sumi, Y., et al ., Fracture control of extremely thick welded steel plates applied to the deck structure of large container ships, J Mar Sci Tech, 18 (2013) 497–514. [18] Muskhelishvili, N.I., Some basic problems of the mathematical theory of elasticity, English ed. translated from the 3rd Russian ed., Noordhoff, Groningen-Holland, (1953). [19] Bueckner, H.F., A novel principle for the computation of stress intensity factors, ZAMM, 59 (1970) 529–546. [20] Bilby, B.A., Cardew, G.E., The crack with a kinked tip, Int J Fract, 11 (1975) 708–712. [21] Bilby, B.A., Cardew, G.E., Howard, I.C., Stress intensity factors at the tips of kinked and forked cracks in: Taplin DMR (Ed.), Fracture 1977, vol 3. Pergamon Press, Oxford, (1978) 197–200. [22] Hayashi, K., Nemat-Nasser, S., Energy release rate and crack kinking, Int J Solids Struct, 17 (1981) 107–114. [23] Leblond, J.B., Crack paths in plane situations-I, General form of the expansion of the stress intensity factors, Int J Solids Struct, 25 (1989) 1311–1325. [24] Sumi, Y., Kagohashi, Y., A fundamental research on the growth pattern of cracks (second report), J Soc Naval Architects Jpn, 152 (1983) 397–404. (in Japanese) [25] Hall, W.J., Kihara, H., Soete, W., Wells, A.A., Brittle fracture of welded plate. Prentice-Hall, Englewood Cliffs, (1967). [26] Munse, W.H., Chapter 8 Brittle fracture in weldments, In: Liebowitz, H. (Ed.), Fracture: An Advanced Treatise IV Engineering Fracture Design, Academic Press, New York, (1969) 371–438. [27] Wells, A.A., Chapter 7 Effects of residual stress on brittle fracture, In: Liebowitz, H. (Ed.), Fracture: An Advanced Treatise IV Engineering Fracture Design, Academic Press, New York, (1969) 337–370. [28] Kihara, H., Yoshida, T., Oba, H., Initiation and propagation of brittle fracture in welded steel plate. International Institute of Welding (IIW) Document No. X-217-59 (1959). [29] Kihara, H., Masubuchi, K., Effect of residual stress on brittle fracture, Weld J, 38 (1959) 159-s. [30] Ship Building Research Association of Japan, Report of Research Panel SR147: Strength evaluation of brittle fracture of welded joints of high tensile steel plates with large heat-input in ship hull, http://www.jstra.jp/html/PDF/SR143- 5103.pdf , (1976). (in Japanese) [31] Ship Building Research Association of Japan, Report of Research Panel SR153: Research on brittle fracture and fatigue strength of welded joints of thick steel plates with large heat-input, http://www.jstra.jp/html/PDF/SR153- 5203-1.pdf , (1977). (in Japanese) [32] Sumi, Y., Computational crack path prediction for brittle fracture in welding residual stress fields, Int J Fract, 44 (1990) 189–207. [33] Kihara, H., Ikeda, K., On brittle fracture initiation (third report)- Brittle fracture initiation characteristics for welded joint of 80 and 60 kgf/mm 2 high strength steels, J Soc Naval Architects Jpn 120 (1966) 207–220. (in Japanese)

RkJQdWJsaXNoZXIy MjM0NDE=