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      High-cycle and very high-cycle bending fatigue strength of shot peened spring steel

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      https://www.riss.kr/link?id=A107936953

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      다국어 초록 (Multilingual Abstract)

      This paper examined bending fatigue strength of shot-peened spring steel under the high cycle fatigue (HCF) and very high cycle fatigue (VHCF), and analyzed the effects of shot-peening on the high strength spring steel through service life. Hourglass shape specimens made of spring steel (Si-Cr alloys) were prepared for the rotary bending fatigue test.
      Actual local stresses were quantitatively calculated to compensate for the applied stress amplitudes, through which it was clarified that the shot-peening had strongly positive effects on the HCF strength, but rather negative effect on the VHCF strength. The fracturing process examination confirmed that most fish-eye fractures arose at sites deeper than the compressive residual stress zone, which did not prevent the creation of the fish-eye. The fatigue strength improvement in the VHCF range was scarcely expected as a result of the shot-peening treatment.
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      This paper examined bending fatigue strength of shot-peened spring steel under the high cycle fatigue (HCF) and very high cycle fatigue (VHCF), and analyzed the effects of shot-peening on the high strength spring steel through service life. Hourglass ...

      This paper examined bending fatigue strength of shot-peened spring steel under the high cycle fatigue (HCF) and very high cycle fatigue (VHCF), and analyzed the effects of shot-peening on the high strength spring steel through service life. Hourglass shape specimens made of spring steel (Si-Cr alloys) were prepared for the rotary bending fatigue test.
      Actual local stresses were quantitatively calculated to compensate for the applied stress amplitudes, through which it was clarified that the shot-peening had strongly positive effects on the HCF strength, but rather negative effect on the VHCF strength. The fracturing process examination confirmed that most fish-eye fractures arose at sites deeper than the compressive residual stress zone, which did not prevent the creation of the fish-eye. The fatigue strength improvement in the VHCF range was scarcely expected as a result of the shot-peening treatment.

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      참고문헌 (Reference)

      1 B. Pyttel, "Very high cycle fatigue is there a fatigue limit?" 33 : 49-58, 2011

      2 K. Shiozawa, "Very high cycle fatigue behavior of shot-peened high carbon chromium bearing steel" 25 (25): 813-822, 2002

      3 B. Nie, "Very high cycle fatigue behavior of shot-peened 3Cr13 high strength spring steel" 50 : 503-508, 2013

      4 T. Yasuoka, "The correction of stress intensity factor for crack growth evaluation under steep residual stress distribution and steep yield strength distribution" 6A : 2013

      5 H. Tada, "The Stress Analysis of Cracks Handbook" ASME Press 2000

      6 K. Shiozawa, "Subsurface crack initiation and propagation mechanism in high-strength steel in a very high cycle fatigue regime" 28 (28): 1521-1532, 2006

      7 S. Nishijima, "Stepwise S-N curve and fisheye failure in gigacycle fatigue" 50 (50): 601-607, 1997

      8 J. K. Xenonphon, "Shot peening viable method to extending component life" SAE 1-8, 1989

      9 K. Shiozawa, "S-N curve characteristics and subsurface crack initiation behavior in ultra-long life fatigue of a high carbon-chromium bearing steel" 24 (24): 781-790, 2001

      10 C. Berger, "Results of very high cycle fatigue tests on helical compression springs" 28 (28): 1658-1663, 2006

      1 B. Pyttel, "Very high cycle fatigue is there a fatigue limit?" 33 : 49-58, 2011

      2 K. Shiozawa, "Very high cycle fatigue behavior of shot-peened high carbon chromium bearing steel" 25 (25): 813-822, 2002

      3 B. Nie, "Very high cycle fatigue behavior of shot-peened 3Cr13 high strength spring steel" 50 : 503-508, 2013

      4 T. Yasuoka, "The correction of stress intensity factor for crack growth evaluation under steep residual stress distribution and steep yield strength distribution" 6A : 2013

      5 H. Tada, "The Stress Analysis of Cracks Handbook" ASME Press 2000

      6 K. Shiozawa, "Subsurface crack initiation and propagation mechanism in high-strength steel in a very high cycle fatigue regime" 28 (28): 1521-1532, 2006

      7 S. Nishijima, "Stepwise S-N curve and fisheye failure in gigacycle fatigue" 50 (50): 601-607, 1997

      8 J. K. Xenonphon, "Shot peening viable method to extending component life" SAE 1-8, 1989

      9 K. Shiozawa, "S-N curve characteristics and subsurface crack initiation behavior in ultra-long life fatigue of a high carbon-chromium bearing steel" 24 (24): 781-790, 2001

      10 C. Berger, "Results of very high cycle fatigue tests on helical compression springs" 28 (28): 1658-1663, 2006

      11 S. T. Tu, "Reference Module in Materials Science and Materials Engineering" 2016

      12 H. Kim, "Random vibration fatigue analysis of a multi-material battery pack structure for an electric vehicle" 3 : 025006-, 2021

      13 Y. Murakami, "Quantitative evaluation of effects of non-metallic inclusions on fatigue strength of high strength steels" 11 (11): 291-298, 1989

      14 X. Xiao, "Prediction of shot peen forming effects with single and repeated impacts" 137 : 182-194, 2018

      15 M. Korzynski, "Predicting the height of uneven surface after ball-peening machining" 150 : 617-624, 2019

      16 W. D. Pilkey, "Peterson’s Stress Concentration Factors" John Wiley & Sons Publishing Company 2008

      17 C. Wang, "Numerical study of grain refinement induced by severe shot peening" 146-147 : 280-294, 2018

      18 F. N. Jespersen, "Modelling the evolution of composition-and stress-depth profiles in austenitic stainless steels during low-temperature nitriding" 24 (24): 025003-, 2016

      19 Y. Murakami, "Metal Fatigue: Effects of Small Defects and Nonmetallic Inclusions" Elsevier 2002

      20 "KS B ISO 1143:2003, Metals - Rotating Bar Bending Fatigue Testing"

      21 M, Benedetti, "Highand very high-cycle plain fatigue resistance of shot peened high-strength aluminum alloys: the role of surface morphology" 70 : 451-462, 2015

      22 Z. F. Zhang, "Grain boundary effects on cyclic deformation and fatigue damage" 53 (53): 1025-1099, 2008

      23 T. Abe, "Gigacycle fatigue properties of 1800 MPa class spring steels" 27 (27): 159-167, 2004

      24 C. Bathias, "Giga-cycle Fatigue in Mechanical Practice" Marcel Dekker 2005

      25 Y. Akiniwa, "Fatigue strength of spring steel under axial and torsional loading in the very high cycle regime" 30 : 2057-2063, 2008

      26 Sang-Jae Yoon, "Fatigue life analysis of shot-peened bearing steel" 대한기계학회 26 (26): 1747-1752, 2012

      27 T. S. Lee, "Fatigue characteristics of bearing steel in giga cycles" 10 : 165-169, 2007

      28 S. Bagherifard, "Fatigue behavior of notched steel specimens with nanocrystallized surface obtained by severe shot peening" 45 : 497-503, 2013

      29 B. Pyttel, "Fatigue behavior of helical compression springs at a very high number of cycles - investigation of various influences" 60 : 101-109, 2014

      30 Y. Murakami, "Effects of small defects on fatigue strength of metals" 1 : 23-30, 1980

      31 Y. Murakami, "Effects of small defects and nonmetallic inclusions on the fatigue strength of metals" 32 (32): 167-180, 1989

      32 Z. Xu, "Effects of pore position in depth on stress/strain concentration and fatigue crack initiation" 43 (43): 2763-2770, 2011

      33 Y. Murakami, "Effects of defects, inclusions and inhomogeneities on fatigue strength" 16 (16): 163-182, 1994

      34 S. C. Chung, "Effect of shot peening on fatigue properties in spring steel" 22 (22): 1009-1015, 1998

      35 J. Wu, "Effect of shot peening coverage on residual stress and surface roughness of 18CrNiMo7-6 steel" 183 : 105785-, 2020

      36 L. Trško, "Effect of severe shot peening on ultra-high-cycle fatigue of a low-alloy steel" 57 : 103-113, 2014

      37 G. Fargas, "Effect of peening on metastable austenitic stainless steels" 641 : 290-296, 2015

      38 Y. Furuya, "Effect of mean stress on fatigue properties of 1800 MPa-class spring steels" 32 : 1101-1107, 2011

      39 K. Sherafatnia, "Effect of initial surface treatment on shot peening residual stress field:analytical approach with experimental verification" 137 : 171-181, 2018

      40 R. Yakura, "Effect of inclusion size on fatigue properties in very high cycle region of low alloy steel used for solid type crankshaft" 35 : 7-13, 2017

      41 M. G. Moore, "Correction for stress layers in X-ray diffraction residual stress analysis" 64 (64): 340-345, 1958

      42 F. Morel, "Comparison between defects and micro-notches in multiaxial fatigue - the size effect and the gradient effect" 31 (31): 263-275, 2009

      43 A. Bahri, "Brinell indentation behavior of the stainless steel X2CrNi18-9:modeling and experiments" 163 : 105142-, 2019

      44 J. K. Li, "An analysis of stress concentrations caused by shot peening and its application in predicting fatigue strength" 15 (15): 1271-1279, 1992

      45 T. Sakai, "A review on fatigue fracture modes of structural metallic materials in very high cycle regime" 93 : 339-351, 2016

      46 A. Nakagawa, "A probabilistic model on crack initiation modes of metallic materials in very high cycle fatigue" 2 : 1199-1206, 2016

      47 M. Marini, "A new challenge in the DEM/FEM simulation of the shot peening process: the residual stress field at a sharp edge" 169 : 105327-, 2020

      48 Y. Furuya, "1010-cycle fatigue properties of 1800 MPa-class JIS-SUP7 spring steel" 26 : 641-645, 2003

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      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2012-11-05 학술지명변경 한글명 : 대한기계학회 영문 논문집 -> Journal of Mechanical Science and Technology KCI등재
      2010-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2008-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2006-01-19 학술지명변경 한글명 : KSME International Journal -> 대한기계학회 영문 논문집
      외국어명 : KSME International Journal -> Journal of Mechanical Science and Technology
      KCI등재
      2006-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2004-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2001-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      1998-07-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      2016 1.04 0.51 0.84
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