Microscale Testing and Characterization Techniques for Benchmarking Crystal. . .
125
99. P. Ghosh, A.H. Chokshi, Size effects on strength in the transition from single-topolycrystalline behavior. Metall. Mater. Trans. A 46(12), 5671–5684 (2015)
100. N.L. Okamoto et al., Specimen-and grain-size dependence of compression deformation
behavior in nanocrystalline copper. Int. J. Plast. 56, 173–183 (2014)
101. C.-J. Wang et al., Plastic deformation size effects in micro-compression of pure nickel with a
few grains across diameter. Mater. Sci. Eng. A 636, 352–360 (2015)
102. X.W. Gu et al., Size-dependent deformation of nanocrystalline Pt nanopillars. Nano Lett.
12(12), 6385–6392 (2012)
103. T. Tsuchiya et al., Specimen size effect on tensile strength of surface-micromachined
polycrystalline silicon thin films. J. Microelectromech. Syst. 7(1), 106–113 (1998)
104. R. Wheeler, P. Shade, M. Uchic, Insights gained through image analysis during in situ
micromechanical experiments. JOM 64(1), 58–65 (2012)
105. P. Shade et al., A combined experimental and simulation study to examine lateral constraint
effects on microcompression of single-slip oriented single crystals. Acta Mater. 57(15), 4580–
4587 (2009)
106. S.T. Wlodek, M. Kelly, D.A. Alden, The Structure of René 88DT, 1996, pp. 129–136
107. J. Stinville et al., Sub-grain scale digital image correlation by electron microscopy for
polycrystalline materials during elastic and plastic deformation. Exp. Mech. 56(2), 197–216
(2016)
108. D.D. Krueger, R.D. Kissinger, R.G. Menzies, Development and introduction of a damage tolerant high temperature nickel-base disk alloy, René 88DT, in Superalloys 1992: Proceedings
of the 7th International Symposium of Superalloys, 1992
109. A. Bagri et al., Microstructure and property-based statistically equivalent representative
volume elements for polycrystalline Ni-based superalloys containing annealing twins. Metall.
Mater. Trans. A 49(11), 5727–5744 (2018)
110. Z. Alam et al., Microstructural aspects of fatigue crack initiation and short crack growth
in René 88DT, in Superalloys 2016: Proceedings of the 13th International Symposium of
Superalloys, (Wiley, Hoboken), p. 2016
111. W.C. Lenthe et al., Prediction of fatigue-initiating twin boundaries in polycrystalline nickel
superalloys informed by TriBeam tomography. Microsc. Microanal. 22, 1732 (2016)
112. J.C. Stinville et al., Measurement of strain localization resulting from monotonic and cyclic
loading at 650 ◦ C in nickel base superalloys. Exp. Mech. 57(8), 1289–1309 (2017)
125
99. P. Ghosh, A.H. Chokshi, Size effects on strength in the transition from single-topolycrystalline behavior. Metall. Mater. Trans. A 46(12), 5671–5684 (2015)
100. N.L. Okamoto et al., Specimen-and grain-size dependence of compression deformation
behavior in nanocrystalline copper. Int. J. Plast. 56, 173–183 (2014)
101. C.-J. Wang et al., Plastic deformation size effects in micro-compression of pure nickel with a
few grains across diameter. Mater. Sci. Eng. A 636, 352–360 (2015)
102. X.W. Gu et al., Size-dependent deformation of nanocrystalline Pt nanopillars. Nano Lett.
12(12), 6385–6392 (2012)
103. T. Tsuchiya et al., Specimen size effect on tensile strength of surface-micromachined
polycrystalline silicon thin films. J. Microelectromech. Syst. 7(1), 106–113 (1998)
104. R. Wheeler, P. Shade, M. Uchic, Insights gained through image analysis during in situ
micromechanical experiments. JOM 64(1), 58–65 (2012)
105. P. Shade et al., A combined experimental and simulation study to examine lateral constraint
effects on microcompression of single-slip oriented single crystals. Acta Mater. 57(15), 4580–
4587 (2009)
106. S.T. Wlodek, M. Kelly, D.A. Alden, The Structure of René 88DT, 1996, pp. 129–136
107. J. Stinville et al., Sub-grain scale digital image correlation by electron microscopy for
polycrystalline materials during elastic and plastic deformation. Exp. Mech. 56(2), 197–216
(2016)
108. D.D. Krueger, R.D. Kissinger, R.G. Menzies, Development and introduction of a damage tolerant high temperature nickel-base disk alloy, René 88DT, in Superalloys 1992: Proceedings
of the 7th International Symposium of Superalloys, 1992
109. A. Bagri et al., Microstructure and property-based statistically equivalent representative
volume elements for polycrystalline Ni-based superalloys containing annealing twins. Metall.
Mater. Trans. A 49(11), 5727–5744 (2018)
110. Z. Alam et al., Microstructural aspects of fatigue crack initiation and short crack growth
in René 88DT, in Superalloys 2016: Proceedings of the 13th International Symposium of
Superalloys, (Wiley, Hoboken), p. 2016
111. W.C. Lenthe et al., Prediction of fatigue-initiating twin boundaries in polycrystalline nickel
superalloys informed by TriBeam tomography. Microsc. Microanal. 22, 1732 (2016)
112. J.C. Stinville et al., Measurement of strain localization resulting from monotonic and cyclic
loading at 650 ◦ C in nickel base superalloys. Exp. Mech. 57(8), 1289–1309 (2017)
