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    Experimental investigations into fretting wear and damage mechanisms of Inconel X-750 alloy

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    https://www.riss.kr/link?id=A106373676

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    다국어 초록 (Multilingual Abstract) kakao i 다국어 번역

    Fretting wear characteristics of Inconel X-750 were investigated under the dry test condition. Ball-on-flat contact configuration was subjected to the oscillatory movement at different sliding amplitudes through the different time duration and normal loading. Fretting tests were carried out according to the American Society for Testing and Materials standards (ASTM D6425) by the high frequency linear-oscillation wear test rig SRV 4 at room temperature with ~60 % relative humidity. Worn surface morphologies in the case of stick, partial slip and gross slip regimes were examined by 3D optical profiler, scanning electron microscopy (SEM) and energy dispersive spectroscopy (EDS). The aim of this research is to study the tribological characteristics of the Ni-based Inconel X-750 superalloy, which is widely used in the air lubricated gas foil bearing applications where contacting surfaces are subjected to fretting motion. It is found that the displacement amplitude and normal load had strong effect on the fretting mode and damage mechanism. Wear mechanisms were associated with the plastically sheared asperities and crack nucleation and propagation during the stick and partial slip regimes, respectively. As the displacement increased, the wear modes were switched to adhesion, abrasion, debris oxidation, delamination and plastic deformation during the gross slip condition. Fretting time dependence was critical in the higher displacement amplitudes where the wear volume loss progressed significantly. However, test duration was less consistent in the stick and partial slip regimes where the wear properties remains unchanged over time.
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    Fretting wear characteristics of Inconel X-750 were investigated under the dry test condition. Ball-on-flat contact configuration was subjected to the oscillatory movement at different sliding amplitudes through the different time duration and normal ...

    Fretting wear characteristics of Inconel X-750 were investigated under the dry test condition. Ball-on-flat contact configuration was subjected to the oscillatory movement at different sliding amplitudes through the different time duration and normal loading. Fretting tests were carried out according to the American Society for Testing and Materials standards (ASTM D6425) by the high frequency linear-oscillation wear test rig SRV 4 at room temperature with ~60 % relative humidity. Worn surface morphologies in the case of stick, partial slip and gross slip regimes were examined by 3D optical profiler, scanning electron microscopy (SEM) and energy dispersive spectroscopy (EDS). The aim of this research is to study the tribological characteristics of the Ni-based Inconel X-750 superalloy, which is widely used in the air lubricated gas foil bearing applications where contacting surfaces are subjected to fretting motion. It is found that the displacement amplitude and normal load had strong effect on the fretting mode and damage mechanism. Wear mechanisms were associated with the plastically sheared asperities and crack nucleation and propagation during the stick and partial slip regimes, respectively. As the displacement increased, the wear modes were switched to adhesion, abrasion, debris oxidation, delamination and plastic deformation during the gross slip condition. Fretting time dependence was critical in the higher displacement amplitudes where the wear volume loss progressed significantly. However, test duration was less consistent in the stick and partial slip regimes where the wear properties remains unchanged over time.

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    참고문헌 (Reference)

    1 G. W. Stachowiak, "Wear: Materials, Mechanisms and Practice" John Wiley & Sons 2006

    2 S. Fouvry, "Wear analysis in fretting of hard coatings through a dissipated energy concept" 203 : 393-403, 1997

    3 M. L. Lewis, "Treatise on Materials Science and Technology, Wear" Academic Press New 1979

    4 G. C. Wood, "Transient oxidation of Ni-base alloys" 10 (10): 471-480, 1970

    5 N. Diomidis, "Third body effects on friction and wear during fretting of steel contacts" 44 (44): 1452-1460, 2011

    6 L. Toth, "The investigation of the steady stage of steel fretting" 20 (20): 277-286, 1972

    7 N. Ohmae, "The effect of slip amplitude on fretting" 27 (27): 281-294, 1974

    8 G. X. Chen, "Study on transition between fretting and reciprocating sliding wear" 250 (250): 665-672, 2001

    9 J. Yu, "Study on torsional fretting behavior of UHMWPE" 255 (255): 616-618, 2008

    10 D. Wenbo, "Structural stiffness of X-750 alloy bump foil strips for compliant foil bearings with different heat treatments" 138 (138): 031702-, 2016

    1 G. W. Stachowiak, "Wear: Materials, Mechanisms and Practice" John Wiley & Sons 2006

    2 S. Fouvry, "Wear analysis in fretting of hard coatings through a dissipated energy concept" 203 : 393-403, 1997

    3 M. L. Lewis, "Treatise on Materials Science and Technology, Wear" Academic Press New 1979

    4 G. C. Wood, "Transient oxidation of Ni-base alloys" 10 (10): 471-480, 1970

    5 N. Diomidis, "Third body effects on friction and wear during fretting of steel contacts" 44 (44): 1452-1460, 2011

    6 L. Toth, "The investigation of the steady stage of steel fretting" 20 (20): 277-286, 1972

    7 N. Ohmae, "The effect of slip amplitude on fretting" 27 (27): 281-294, 1974

    8 G. X. Chen, "Study on transition between fretting and reciprocating sliding wear" 250 (250): 665-672, 2001

    9 J. Yu, "Study on torsional fretting behavior of UHMWPE" 255 (255): 616-618, 2008

    10 D. Wenbo, "Structural stiffness of X-750 alloy bump foil strips for compliant foil bearings with different heat treatments" 138 (138): 031702-, 2016

    11 H. Bingbing, "Stick–slip vibration of a friction damper for energy dissipation" 9 (9): 1-13, 2017

    12 I. Iordanoff, "Solid third body analysis using a discrete approach : Influence of adhesion and particle size on macroscopic properties" 124 (124): 530-538, 2002

    13 S. Fouvry, "Quantification of fretting damage" 200 (200): 186-205, 1996

    14 Z. R. Zhou, "Progress in fretting maps" 39 (39): 1068-1073, 2006

    15 M. H. Zhu, "On the mechanisms of various fretting wear modes" 44 (44): 1378-1388, 2011

    16 O. Vingsbo, "On fretting maps" 126 (126): 131-147, 1988

    17 J. S. Larsen, "Numerical and experimental investigation of bump foil mechanical behaviour" 74 : 46-56, 2014

    18 Z. R. Zhou, "Mixed fretting regime" 181 : 531-536, 1995

    19 X. Long, "Microstructural characterization of subsurface caused by fretting wear of Inconel 690TT alloy" 115 : 32-38, 2016

    20 L. Vincent, "Mechanics and materials in fretting" 153 (153): 135-148, 1992

    21 H. Mohrbacher, "Laboratory testing of displacement and load induced fretting" 28 (28): 269-278, 1995

    22 박창규, "Influence of high-power diode laser heat treatment on wear resistance of a mold steel" 대한기계학회 33 (33): 829-836, 2019

    23 G. Stachowiak, "Fretting wear and friction behaviour of engineering ceramics" 190 (190): 212-218, 1995

    24 D. Dongxing, "Fretting wear and fretting fatigue behaviors of diamond-like carbon and graphite-like carbon films deposited on Ti-6Al-4V alloy" 313 : 462-469, 2014

    25 E. Liu, "Fretting friction and wear of polycrystalline diamond coatings" 5 (5): 649-653, 1996

    26 W. Qiufeng, "Experimental investigation on tribological behavior of several polymer materials under reciprocating sliding and fretting wear conditions" 104 : 73-82, 2016

    27 G. Xianglong, "Effects of sliding amplitude and normal load on the fretting wear behavior of alloy 690 tube exposed to high temperature water" 116 : 155-163, 2017

    28 J. Li, "Effects of displacement amplitude on fretting wear behaviors and mechanism of Inconel 600 alloy" 304 (304): 223-230, 2013

    29 J. Vižintin, "Effect of slip amplitude on the fretting wear of silicon nitride against silicon nitride" 192 (192): 11-20, 1996

    30 L. Jie, "Effect of grain size and hardness on fretting wear behavior of Inconel 600 alloys" 81 : 215-222, 2015

    31 V. K. Virendra, "Effect of contact pressure and stress ratio on the fretting fatigue behaviour of Ti-6Al-4V" 707 : 647-656, 2017

    32 R. F. Baker, "Direct observations of fretting wear of steel" 203 : 425-433, 1997

    33 X. Long, "Damage mechanism of alloy 690TT mated with type 304stainless steel during fretting wear in partial slip regime" 132 : 284-292, 2017

    34 Z. R. Zhou, "Cracking behaviour of various aluminium alloys during fretting wear" 155 (155): 317-330, 1992

    35 R. D. Mindlin, "Compliance of elastic bodies in contact" 16 : 259-268, 1949

    36 P. De Baets, "Characterisation of the fretting wear of unlubricated steel surfaces based on the comparison of wear results obtained by different methods" 208 (208): 169-176, 1997

    37 Y. Berthier, "Background on Friction and Wear: Handbook of Materials Behaviour Models" Lemaître Academic Press 676-699, 2001

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