Microscale Testing and Characterization Techniques for Benchmarking Crystal. . .
123
48. W.N. Sharpe Jr., An Interferometric Strain-Displacement Measurement System (National
Aeronautics and Space Administration, Langley Research Center, Hampton, 1989)
49. T. Chu, W. Ranson, M.A. Sutton, Applications of digital-image-correlation techniques to
experimental mechanics. Exp. Mech. 25(3), 232–244 (1985)
50. A.D. Kammers, S. Daly, Self-assembled nanoparticle surface patterning for improved digital
image correlation in a scanning electron microscope. Exp. Mech. 53(8), 1333–1341 (2013)
51. J.C. Stinville et al., High resolution mapping of strain localization near twin boundaries in a
nickel-based superalloy. Acta Mater. 98, 29–42 (2015)
52. C. Montgomery, B. Koohbor, N.R. Sottos, A robust patterning technique for electron
microscopy-based digital image correlation at sub-micron resolutions. Exp. Mech. 59(7),
1063–1073 (2019)
53. T.M. Pollock, S. Tin, Nickel-based superalloys for advanced turbine engines: chemistry,
microstructure and properties. J. Propuls. Power 22(2), 361–374 (2006)
54. S. Keshavarz, S. Ghosh, Multi-scale crystal plasticity finite element model approach to
modeling nickel-based superalloys. Acta Mater. 61(17), 6549–6561 (2013)
55. V.T. Srikar, S. Spearing, A critical review of microscale mechanical testing methods used in
the design of microelectromechanical systems. Exp Mech 43, 238–247 (2003)
56. D.S. Gianola, C. Eberl, Micro- and nanoscale tensile testing of materials. JOM 61(3), 24
(2009)
57. ASTM, E8/E8M-13, Standard Test Methods for Tension Testing of Metallic Materials (ASTM
International, West Conshohocken, PA, 2013)
58. M.D. Uchic et al., Sample dimensions influence strength and crystal plasticity. Science
305(5686), 986–989 (2004)
59. L.A. Giannuzzi, F.A. Stevie, A review of focused ion beam milling techniques for TEM
specimen preparation. Micron 30(3), 197–204 (1999)
60. D.W. Eastman et al., Benchmarking crystal plasticity models with microtensile evaluation and
3D characterization of René 88DT, in Superalloys 2016: Proceedings of the 13th Intenational
Symposium of Superalloys. Wiley Online Library
61. L. Frey, C. Lehrer, H. Ryssel, Nanoscale effects in focused ion beam processing. Appl. Phys.
A 76(7), 1017–1023 (2003)
62. D.P. Adams et al., Micromilling of metal alloys with focused ion beam–fabricated tools.
Precis. Eng. 25(2), 107–113 (2001)
63. J. Orloff et al., High resolution focused ion beams: FIB and its applications. Phys. Today
57(1), 54–55 (2004)
64. P.R. Munroe, The application of focused ion beam microscopy in the material sciences. Mater.
Charact. 60(1), 2–13 (2009)
65. K.H. Ho, S.T. Newman, State of the art electrical discharge machining (EDM). Int. J. Mach.
Tools Manuf. 43(13), 1287–1300 (2003)
66. S. Mahendran et al., A review of micro-EDM. Proceedings of the international multi
conference of engineers and computer scientists, vol. 2, (2010)
67. R. Bobbili, V. Madhu, A.K. Gogia, Effect of wire-EDM machining parameters on surface
roughness and material removal rate of high strength armor steel. Mater. Manuf. Process.
28(4), 364–368 (2013)
68. Y.S. Liao, J.T. Huang, Y.H. Chen, A study to achieve a fine surface finish in wire-EDM. J.
Mater. Process. Technol. 149(1), 165–171 (2004)
69. R. Ramakrishnan, L. Karunamoorthy, Multi response optimization of wire EDM operations
using robust design of experiments. Int. J. Adv. Manuf. Technol. 29(1), 105–112 (2006)
70. P.S. Rao, K. Ramji, B. Satyanarayana, Experimental investigation and optimization of wire
EDM parameters for surface roughness, MRR and white layer in machining of aluminium
alloy. Procedia Mater. Sci. 5, 2197–2206 (2014)
71. Q. Feng et al., Femtosecond laser machining of single-crystal superalloys through thermal
barrier coatings. Mater. Sci. Eng. A 430(1), 203–207 (2006)
72. N.H. Rizvi, Femtosecond laser micromachining: current status and applications. Riken
review, 2003: p. 107–112
123
48. W.N. Sharpe Jr., An Interferometric Strain-Displacement Measurement System (National
Aeronautics and Space Administration, Langley Research Center, Hampton, 1989)
49. T. Chu, W. Ranson, M.A. Sutton, Applications of digital-image-correlation techniques to
experimental mechanics. Exp. Mech. 25(3), 232–244 (1985)
50. A.D. Kammers, S. Daly, Self-assembled nanoparticle surface patterning for improved digital
image correlation in a scanning electron microscope. Exp. Mech. 53(8), 1333–1341 (2013)
51. J.C. Stinville et al., High resolution mapping of strain localization near twin boundaries in a
nickel-based superalloy. Acta Mater. 98, 29–42 (2015)
52. C. Montgomery, B. Koohbor, N.R. Sottos, A robust patterning technique for electron
microscopy-based digital image correlation at sub-micron resolutions. Exp. Mech. 59(7),
1063–1073 (2019)
53. T.M. Pollock, S. Tin, Nickel-based superalloys for advanced turbine engines: chemistry,
microstructure and properties. J. Propuls. Power 22(2), 361–374 (2006)
54. S. Keshavarz, S. Ghosh, Multi-scale crystal plasticity finite element model approach to
modeling nickel-based superalloys. Acta Mater. 61(17), 6549–6561 (2013)
55. V.T. Srikar, S. Spearing, A critical review of microscale mechanical testing methods used in
the design of microelectromechanical systems. Exp Mech 43, 238–247 (2003)
56. D.S. Gianola, C. Eberl, Micro- and nanoscale tensile testing of materials. JOM 61(3), 24
(2009)
57. ASTM, E8/E8M-13, Standard Test Methods for Tension Testing of Metallic Materials (ASTM
International, West Conshohocken, PA, 2013)
58. M.D. Uchic et al., Sample dimensions influence strength and crystal plasticity. Science
305(5686), 986–989 (2004)
59. L.A. Giannuzzi, F.A. Stevie, A review of focused ion beam milling techniques for TEM
specimen preparation. Micron 30(3), 197–204 (1999)
60. D.W. Eastman et al., Benchmarking crystal plasticity models with microtensile evaluation and
3D characterization of René 88DT, in Superalloys 2016: Proceedings of the 13th Intenational
Symposium of Superalloys. Wiley Online Library
61. L. Frey, C. Lehrer, H. Ryssel, Nanoscale effects in focused ion beam processing. Appl. Phys.
A 76(7), 1017–1023 (2003)
62. D.P. Adams et al., Micromilling of metal alloys with focused ion beam–fabricated tools.
Precis. Eng. 25(2), 107–113 (2001)
63. J. Orloff et al., High resolution focused ion beams: FIB and its applications. Phys. Today
57(1), 54–55 (2004)
64. P.R. Munroe, The application of focused ion beam microscopy in the material sciences. Mater.
Charact. 60(1), 2–13 (2009)
65. K.H. Ho, S.T. Newman, State of the art electrical discharge machining (EDM). Int. J. Mach.
Tools Manuf. 43(13), 1287–1300 (2003)
66. S. Mahendran et al., A review of micro-EDM. Proceedings of the international multi
conference of engineers and computer scientists, vol. 2, (2010)
67. R. Bobbili, V. Madhu, A.K. Gogia, Effect of wire-EDM machining parameters on surface
roughness and material removal rate of high strength armor steel. Mater. Manuf. Process.
28(4), 364–368 (2013)
68. Y.S. Liao, J.T. Huang, Y.H. Chen, A study to achieve a fine surface finish in wire-EDM. J.
Mater. Process. Technol. 149(1), 165–171 (2004)
69. R. Ramakrishnan, L. Karunamoorthy, Multi response optimization of wire EDM operations
using robust design of experiments. Int. J. Adv. Manuf. Technol. 29(1), 105–112 (2006)
70. P.S. Rao, K. Ramji, B. Satyanarayana, Experimental investigation and optimization of wire
EDM parameters for surface roughness, MRR and white layer in machining of aluminium
alloy. Procedia Mater. Sci. 5, 2197–2206 (2014)
71. Q. Feng et al., Femtosecond laser machining of single-crystal superalloys through thermal
barrier coatings. Mater. Sci. Eng. A 430(1), 203–207 (2006)
72. N.H. Rizvi, Femtosecond laser micromachining: current status and applications. Riken
review, 2003: p. 107–112
