Effect of laser shock peening on residual stress, microstructure and fatigue behavior of ATI 718Plus alloy
Tài liệu tham khảo
Cemal, 2012, ALLVAC 718 Plus™ superalloy for aircraft engine applications, vol. 718, 75
Dempster, 2005, Structure and property comparison of Allvac® 718Plus™ alloy and waspaloy forgings, 155
Schreiber, 2006, Opportunities and challenges for the new nickel base alloy 718Plus™, 1
Kennedy, 2003, Developments in wrought Nb containing superalloys (718 + 100°F), Superalloys
Jeniski, 2006, Development of ATI Allvac® 718Plus® alloy and applications, 1
Liu, 2004, Fatigue crack propagation behaviors of new developed Allvac® 718Plus™ superalloy, 283
Pédron, 1982, The effect of microstructure and environment on the crack growth behaviour of Inconel 718 alloy at 650°C under fatigue, creep and combined loading, Mater Sci Eng, 56, 143, 10.1016/0025-5416(82)90167-7
Hertzberg, 2012
Man, 2010, Extrusions and intrusions in fatigued metals. Part 1. State of the art and history, Philos Mag, 5, 636
Milella, 2013, Morphological aspects of fatigue crack formation and growth, Fatigue Corros Met, 73, 10.1007/978-88-470-2336-9_2
Peyre, 1996, Laser shock processing of aluminium alloys. Application to high cycle fatigue behaviour, Mater Sci Eng, A, 210, 102, 10.1016/0921-5093(95)10084-9
Heckenberger, 2011, Laser shock peening to improve the fatigue resistance of AA7050 components, Int J Struct Integr, 2, 22, 10.1108/17579861111108581
Clauer, 1996, Laser shock peening for fatigue resistance, 217
Altenberger, 2012, On the effect of deep-rolling and laser-peening on the stress-controlled low- and high-cycle fatigue behavior of Ti-6Al-4V at elevated temperatures up to 550 °C, Int J Fatigue, 44, 292, 10.1016/j.ijfatigue.2012.03.008
Gill, 2012
Peyre, 1996, Laser shock processing of materials, physical processes involved and examples of applications, J Laser Appl, 8, 135, 10.2351/1.4745414
Gill, 2015, Characteristics of surface layers formed on inconel 718 by laser shock peening with and without a protective coating, J Mater Process Technol, 225, 463, 10.1016/j.jmatprotec.2015.06.026
Gujba, 2014, Laser peening process and its impact on materials properties in comparison with shot peening and ultrasonic impact peening, Mater (Basel), 7, 7925, 10.3390/ma7127925
Montross, 2002, Laser shock processing and its effects on microstructure and properties of metal alloys: a review, Int J Fatigue, 24, 1021, 10.1016/S0142-1123(02)00022-1
Allegheny Technologies Incorporated. ATI 718Plus® Technical Data sheet. Vol. 1; 2013.
ASTM standard practice for conducting force controlled constant amplitude axial fatigue tests of metallic materials. E466-15. West Conshohocken, PA: ASTM International; 2015.
ASTM standard test method for microindentation hardness of materials. E384–05a. West Conshohocken, PA: ASTM International; 2005.
ASTM standard test method for verifying the alignment of X-ray diffraction instrumentation for residual stress measurement. E915-10. West Conshohocken, PA; ASTM International; 2010.
ASTM standard test method for determining the X-ray elastic constants for use in the measurement of residual stress using X-ray diffraction techniques. E1426-94. West Conshohocken, PA; ASTM International; 1998.
SAE International, 2003
ASTM standard test methods for tension testing of metallic materials. E8/E8M-15a. West Conshohocken, PA; ASTM International; 2015.
Hershko, 2008, Assessment of fatigue striation counting accuracy using high resolution scanning electron microscope, Eng Fail Anal, 15, 20, 10.1016/j.engfailanal.2007.01.005
Schwartz, 2009, Electron backscatter diffraction in materials science. Electron Backscatter Diffr, Mater Sci, 1
Kamaya, 2006, Quantification of plastic strain of stainless steel and nickel alloy by electron backscatter diffraction, Acta Mater, 54, 539, 10.1016/j.actamat.2005.08.046
Wilkinson, 2014, A review of advances and challenges in EBSD strain mapping, IOP Conf Ser Mater Sci Eng, 55, 12020, 10.1088/1757-899X/55/1/012020
Miao, 2012, Microstructural extremes and the transition from fatigue crack initiation to small crack growth in a polycrystalline nickel-base superalloy, Acta Mater, 60, 2840, 10.1016/j.actamat.2012.01.049
Gao, 2007, High-cycle fatigue of nickel-base superalloy René 104 (ME3): Interaction of microstructurally small cracks with grain boundaries of known character, Acta Mater, 55, 3155, 10.1016/j.actamat.2007.01.033
Johnson, 1971, Dynamic deformation twinning in shock-loaded iron, J Appl Phys, 42, 4171, 10.1063/1.1659750
Meyers, 1983, The attenuation of shock waves in nickel: second report, Mater Sci Eng, 59, 235, 10.1016/0025-5416(83)90171-4
Lu, 2010, Grain refinement mechanism of multiple laser shock processing impacts on ANSI 304 stainless steel, Acta Mater, 58, 5354, 10.1016/j.actamat.2010.06.010
Bruet, 2008, Materials design principles of ancient fish armour, Nat Mater, 7, 748, 10.1038/nmat2231
Dane, 1998, Shot peening with lasers, Adv Mater Process, 153, 37
Prevey, 1998, Thermal residual stress relaxation and distortion in surface enhanced gas turbine engine components, 3
Gill, 2013, Comparison of mechanisms of advanced mechanical surface treatments in nickel-based superalloy, Mater Sci Eng, A, 576, 346, 10.1016/j.msea.2013.04.021
Eigenmann, 1994, Surface residual stress relaxation in steels by thermal or mechanical treatment, 598
James, 1981, The relaxation of residual stresses in fatigue, 297