Page 191 - T. Anderson-Fracture Mechanics - Fundamentals and Applns.-CRC (2005)
P. 191

1656_C003.fm  Page 171  Monday, May 23, 2005  5:42 PM





                       Elastic-Plastic Fracture  Mechanics                                         171


                       REFERENCES

                          1. Wells, A.A., ‘‘Unstable Crack Propagation in Metals: Cleavage and Fast Fracture.’’ Proceedings of
                             the Crack Propagation Symposium, Vol. 1, Paper 84, Cranfield, UK, 1961.
                          2. Irwin, G.R., ‘‘Plastic Zone Near a Crack and Fracture Toughness.’’ Sagamore Research Conference
                             Proceedings, Vol. 4, 1961, pp. 63–78.
                          3. Burdekin, F.M. and Stone, D.E.W., ‘‘The Crack Opening Displacement Approach to Fracture Mechanics
                             in Yielding Materials.’’ Journal of Strain Analysis, Vol. 1, 1966, pp. 145–153.
                          4. Rice, J.R., ‘‘A Path Independent Integral and the Approximate Analysis of Strain Concentration by
                             Notches and Cracks.’’ Journal of Applied Mechanics, Vol. 35, 1968, pp. 379–386.
                          5. BS 7448: Part 1: 1991, ‘‘Fracture Mechanics Toughness Tests, Part 1, Method for Determination of
                             K IC , Critical CTOD and Critical J Values of Metallic Materials,’’ The British Standards Institution,
                             London, 1991.
                          6. E 1290-99, ‘‘Standard Test Method for Crack Tip Opening Displacement (CTOD) Fracture Toughness
                             Measurement.’’ American Society for Testing and Materials, Philadelphia, PA, 1999.
                          7. Hutchinson, J.W., ‘‘Singular Behavior at the End of a Tensile Crack Tip in a Hardening Material.’’
                             Journal of the Mechanics and Physics of Solids,  Vol. 16, 1968, pp. 13–31.
                          8. Rice, J.R. and Rosengren, G.F., ‘‘Plane Strain Deformation near a Crack Tip in a Power-Law Hard-
                             ening Material.” Journal of the Mechanics and Physics of Solids,  Vol. 16, 1968, pp. 1–12.
                          9. McMeeking, R.M. and Parks, D.M., ‘‘On Criteria for J-Dominance of Crack Tip Fields in Large-
                             Scale Yielding.’’ Elastic Plastic Fracture, ASTM STP 668, American Society for Testing and Materials,
                             Philadelphia, PA, 1979, pp. 175–194.
                         10. Read, D.T., ‘‘Applied J-Integral in HY130 Tensile Panels and Implications for Fitness for Service
                             Assessment.’’ Report NBSIR 82-1670, National Bureau of Standards, Boulder, CO, 1982.
                         11. Begley, J.A. and Landes, J.D., ‘‘The J-Integral as a Fracture Criterion.’’ ASTM STP 514, American
                             Society for Testing and Materials, Philadelphia, PA, 1972, pp. 1–20.
                         12. Landes, J.D. and Begley, J.A., ‘‘The Effect of Specimen Geometry on J Ic .’’ ASTM STP 514, American
                             Society for Testing and Materials, Philadelphia, PA, 1972, pp. 24–29.
                         13. Rice, J.R., Paris, P.C., and Merkle, J.G., ‘‘Some Further Results of J-Integral Analysis and Estimates.’’
                             ASTM STP 536, American Society for Testing and Materials, Philadelphia, PA, 1973, pp. 231–245.
                         14. Shih, C.F. ‘‘Relationship between the J-Integral and the Crack Opening Displacement for Stationary
                             and Extending Cracks.’’ Journal of the Mechanics and Physics of Solids, Vol. 29, 1981, pp. 305–326.
                         15. Rice, J.R., Drugan, W.J., and Sham, T.-L., ‘‘Elastic-Plastic Analysis of Growing Cracks.’’ ASTM STP
                             700, American Society for Testing and Materials, Philadelphia, PA, 1980, pp. 189–221.
                         16. Dodds, R.H., Jr. and Tang, M., ‘‘Numerical Techniques to Model Ductile Crack Growth in Fracture
                             Test Specimens.’’ Engineering Fracture Mechanics, Vol. 46, 1993, pp. 246–253.
                         17. Dodds, R.H., Jr., Tang, M., and Anderson, T.L. ‘‘Effects of Prior Ductile Tearing on Cleavage Fracture
                             Toughness in the Transition Region.’’ Second Symposium on Constraint Effects in Fracture, American
                             Society for Testing and Materials, Philadelphia, PA (in press).
                         18. McClintock, F.A., ‘‘Plasticity Aspects of Fracture.’’ Fracture: An Advanced Treatise, Vol. 3, Academic
                             Press, New York, 1971, pp. 47–225.
                         19. Anderson, T.L., ‘‘Ductile and Brittle Fracture Analysis of Surface Flaws Using CTOD.’’ Experimental
                             Mechanics, 1988, pp. 188–193.
                         20. Kirk, M.T., Koppenhoefer, K.C., and Shih, C.F., ‘‘Effect of Constraint on Specimen Dimensions
                             Needed to Obtain Structurally Relevant Toughness Measures.’’ Constraint Effects in Fracture, ASTM
                             STP 1171, American Society for Testing and Materials, Philadelphia, PA 1993, pp. 79–103.
                         21. Joyce, J.A. and Link, R.E., ‘‘Effect of Constraint on Upper Shelf Fracture Toughness.’’ Fracture Mechan-
                             ics, Vol. 26, ASTM STP 1256, American Society for Testing and Materials, Philadelphia, PA (in press).
                         22. Towers, O.L. and Garwood, S.J., ‘‘Influence of Crack Depth on Resistance Curves for Three-Point Bend
                             Specimens in HY130.’’ ASTM STP 905, American Society for Testing and Materials, Philadelphia, PA,
                             1986, pp. 454–484.
                         23. Williams, M.L., ‘‘On the Stress Distribution at the Base of a Stationary Crack.’’ Journal of Applied
                             Mechanics, Vol. 24, 1957, pp. 109–114.
                         24. Bilby, B.A., Cardew, G.E., Goldthorpe, M.R., and Howard, I.C., ‘‘A Finite Element Investigation of
                             the Effects of Specimen Geometry on the Fields of Stress and Strain at the Tips of Stationary Cracks.’’
                             Size Effects in Fracture, Institute of Mechanical Engineers, London, 1986, pp. 37–46.
   186   187   188   189   190   191   192   193   194   195   196