1,740
Views
47
CrossRef citations to date
0
Altmetric
Part A: Materials Science

Solute drag on perfect and extended dislocations

&
Pages 895-921 | Received 28 Oct 2015, Accepted 08 Jan 2016, Published online: 29 Feb 2016

References

  • A.H. Cottrell, Effect of solute atoms on the behaviour of dislocations, in Report of a Conference on Strength of Solids, The Physical Society, London, 1948.
  • A.H. Cottrell and B.A. Bilby, Dislocation theory of yielding and strain ageing of iron, Proc. Phys. Soc. A 62 (1949), pp. 49–62.
  • A.H. Cottrell and M.A. Jaswon, Distribution of solute atoms round a slow dislocation, Proc. Phys. Soc. A 199 (1949), pp. 104–114.
  • A.H. Cottrell, Dislocations and Plastic Flow in Crystals, Oxford University Press, Oxford, 1953.
  • H. Yoshinaga and S. Morozumi, The solute atmosphere round a moving dislocation and its dragging stress, Phil. Mag. 23 (1971), pp. 1367–1385.
  • S. Takeuchi and A.S. Argon, Glide and climb resistance to the motion of an edge dislocation due to dragging a Cottrell atmosphere, Phil. Mag. A 40 (1979), pp. 65–75.
  • W. James and D.M. Barnett, A re-examination of atmospheres and impurity drag on moving dislocations, in Proceedings from Solute-Defect Interaction: Theory and Experiment, Kingston, Canada, 1985, pp. 136–142.
  • R. Fuentes-Samaniego, R. Gasca-Neri, and J.P. Hirth, Solute drag on moving edge dislocations, Phil. Mag. A 49 (1984), pp. 31–43.
  • F. Zhang and W.A. Curtin, Atomistically informed solute drag in Al--Mg, Modelling Simul. Mater. Sci. Eng. 16 (2008), pp. 05506-1–05506-18.
  • J.P. Hirth and J. Lothe, Theory of Dislocations, Wiley, New York, 1982.
  • A.S. Argon, Strengthening Mechanisms in Crystal Plasticity, Oxford University Press, Oxford, 2008.
  • W. Cai, A. Arsenlis, C.R. Weinberger, and V.V. Bulatov, A non-singular continuum theory of dislocations, J. Mech. Phys. Solids 54 (2006), pp. 561–587.
  • D.L. Olmsted, R. Phillips, and W.A. Curtin, Modelling diffusion in crystals under high internal stress gradients, Modelling Simul. Mater. Sci. Eng. 12 (2004), pp. 781–797.
  • E. Dontsova, J. Rottler, and C.W. Sinclair, Solute segregation kinetics and dislocation depinning in a binary alloy, Phys. Rev. B 91 (2015), pp. 224103-1–224103-10.
  • A.C. Damask and G.J. Dienes, Point Defects in Metals, Gordon and Breach, New York, 1963.
  • R.W. McLellan, Solution thermodynamics, in Treatise on Materials Science and Technology, H. Herman, ed., Academic Press, New York, 1974, pp. 1–43.
  • R. Fuentes-Samaniego, W.D. Nix, and G.M. Pound, Vacancy and substitutional solute distribution around an edge dislocation in equilibrium and in steady-state glide motion, Phil. Mag. A 42 (1980), pp. 591–600.
  • W. Cai, R.B. Sills, D.M. Barnett, and W.D. Nix, Modeling a distribution of point defects as misfitting inclusions in stressed solids, J. Mech. Phys. Sol. 66 (2014), pp. 154–171.
  • P. Szelestey, M. Patriarca, and K. Kaski, Computational study of core structure and Peierls stress of dissociated dislocations in nickel, Modelling Simul. Mater. Sci. Eng. 11 (2003), pp. 883–895.
  • J. von Pezold, L. Lymperakis and J. Neugebeauer, Hydrogen-enhanced local plasticity at dilute bulk H concentrations: The role of H--H interactions and the formation of local hydrides: Acta Mater. 59 (2011), pp.2969–2980.
  • P. Moin, Fundamentals of Engineering Numerical Analysis, Cambridge University Press, New York, 2010.
  • F.R.N. Nabarro, Z.S. Basinski, and D.B. Holt, The plasticity of pure single crystals, Adv. Phys. 13 (1964), pp. 193–323.
  • D. Hull and D.J. Bacon, Introduction to Dislocations, Butterworth-Heinemann, Oxford, 2001.
  • G.P.M. Leyson, B. Grabowski, and J. Neugebauer, Multiscale description of dislocation induced nano-hydrides, Acta Mater. 89 (2015), pp. 50–59.
  • S. Patinet and L. Proville, Depinning transition for a screw dislocation in a model solid solution, Phys. Rev. B 78 (2008), pp. 104109-1–101409-9.
  • T.S. Byun, On the stress dependence of partial dislocation separation and deformation microstructure in austenitic stainless steels, Acta Mater. 51 (2003), pp. 3063–3071.
  • J.W. Christian, Some surprising features of plastic deformation of body-centered cubic metals and alloys, Metall. Trans. A 14A (1983), pp. 1237–1256.
  • K.A. Nibur, D.F. Bahr, and B.P. Somerday, Hydrogen effects on dislocation activity in austenitic stainless steel, Acta Mater. 54 (2006), pp. 2677–2684.
  • P. Müllner, C. Solenthaler, P. Uggowitzer, and M.O. Speidel, On the effect of nitrogen on the dislocation structure of austenitic stainless steel, Mater. Sci. Eng. A 164 (1993), pp. 164–169.
  • S.-M. Lee and J.-Y. Lee, The transport and trapping phenomena of hydrogen in nickel, Met. Trans. A 17A (1986), pp. 181–187.
  • M.L. Rudee and R.A. Huggins, The effect of hydrogen on the stacking fault probability of copper, Phys. Stat. Sol. 4 (1964), pp. K101–K103.
  • C. San Marchi, B.P. Somerday, and H.F. Jackson, Hydrogen-assisted Deformation and Fracture of Austenitic Stainless Steels, in 2nd International Conference of Engineering Against Fracture, Mykonos, Greece, June 2011.
  • J.B. Cohen and J. Weertman, A dislocation model for twinning in f.c.c. metals, Acta Metall. 11 (1963), pp. 996–998.
  • J.W. Christian and S. Mahajan, Deformation twinning, Prog. Mater. Sci. 39 (1995), pp. 1–157.
  • H. Fujita and S. Ueda, Stacking faults and F.C.C. (γ) → H.C.P. (ε) transformation in 18/8-type stainless steel, Acta Metall. 20 (1972), pp. 759–767.
  • Z. Nishiyama, Martensitic Transformation, Academic Press, New York, 1978.
  • D.G. Ulmer and C.J. Altstetter, Phase relations in the hydrogen-austenite system, Acta Metall. Mater. 41 (1993), pp. 2235–2241.
  • M. Hoelzel, S.A. Danilkin, H. Ehrenberg, D.M. Toebbens, T.J. Udovic, H. Fuess, and H. Wipf, Effects of high-pressure hydrogen charging on the structure of austenitic stainless steels, Mater. Sci. Eng. A 384 (2004), pp. 255–261.
  • C. San Marchi, B.P. Somerday, and S.L. Robinson, Permeability, solubility and diffusivity of hydrogen isotopes in stainless steels at high gas pressures, Int. J. Hydrogen Energy 32 (2007), pp. 100–116.
  • P.J. Ferreira, I.M. Robertson, and H.K. Birnbaum, Influence of hydrogen on the stacking-fault energy of an austenitic stainless steel, Mater. Sci. Forum 207-–209 (1996), pp. 93–96.

Reprints and Corporate Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

To request a reprint or corporate permissions for this article, please click on the relevant link below:

Academic Permissions

Please note: Selecting permissions does not provide access to the full text of the article, please see our help page How do I view content?

Obtain permissions instantly via Rightslink by clicking on the button below:

If you are unable to obtain permissions via Rightslink, please complete and submit this Permissions form. For more information, please visit our Permissions help page.