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      고강도 용착금속의 미세조직이 저온균열에 미치는 영향 = The Effects of Microstructure on Cold Crack in High-Strength Weld Metals

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      https://www.riss.kr/link?id=A100886300

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      다국어 초록 (Multilingual Abstract)

      In the past, cold crack was commonly observed in the HAZ(heat affected zone) of high-strength steels. Applying to TMCP(thermo-mechanical controlled process) and HSLA(high strength low alloy) steels, cold crack tends to increase the occurrence in the weld metal. It is generally understood that cold crack occurs when the following factors are present simultaneously : diffusible hydrogen in the weld metal, a susceptible microstructure and residual stress. In particular, many studies investigated the microstructural effect on the cold crack in HAZ and the cold crack in weld metals starts to receive the special attendance in modern times. The purpose of the study is to review the effect of weld microstructures (grain boundary ferrite, Widm$\ddot{a}$nstatten ferrite, acicular ferrite, bainite and martensite) on cold crack in the weld metals. Among various microstructures of weld metals, acicular ferrite produced the greatest resistance to the cold crack due to the fine interlocking nature and high-angle grain boundary of the microstructure.
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      In the past, cold crack was commonly observed in the HAZ(heat affected zone) of high-strength steels. Applying to TMCP(thermo-mechanical controlled process) and HSLA(high strength low alloy) steels, cold crack tends to increase the occurrence in the w...

      In the past, cold crack was commonly observed in the HAZ(heat affected zone) of high-strength steels. Applying to TMCP(thermo-mechanical controlled process) and HSLA(high strength low alloy) steels, cold crack tends to increase the occurrence in the weld metal. It is generally understood that cold crack occurs when the following factors are present simultaneously : diffusible hydrogen in the weld metal, a susceptible microstructure and residual stress. In particular, many studies investigated the microstructural effect on the cold crack in HAZ and the cold crack in weld metals starts to receive the special attendance in modern times. The purpose of the study is to review the effect of weld microstructures (grain boundary ferrite, Widm$\ddot{a}$nstatten ferrite, acicular ferrite, bainite and martensite) on cold crack in the weld metals. Among various microstructures of weld metals, acicular ferrite produced the greatest resistance to the cold crack due to the fine interlocking nature and high-angle grain boundary of the microstructure.

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      참고문헌 (Reference)

      1 J. H. Tweed, 17 (17): 45-, 1983

      2 S. H. Kim, 36 : 1197-, 2001

      3 J. L. Lee, 21 : 1527-, 1990

      4 이해우, "후판 용접부 횡균열 발생에 미치는 확산성수소의 영향" 대한용접접합학회 26 (26): 11-15, 2008

      5 이해우, "후판 용접부 횡균열 발생에 미치는 경화조직의 영향" 대한용접접합학회 26 (26): 5-10, 2008

      6 김가희, "철강 용착금속 미세조직의 정량화 기법 검증" 대한용접접합학회 23 (23): 27-33, 2005

      7 김희진, "용접금속의 저온균열에 미치는 미세조직의 영향" 대한용접접합학회 21 (21): 8-13, 2003

      8 S. Liu, "Welding Theory and Practice, Part 3"

      9 N. bailey, "Weldability of High Strength Steels" 389-396, 1993

      10 H. W. Lee, "Weld metal hydrogen-assisted cracking in thick steel plate weldments" 445 (445): 328-335, 2007

      1 J. H. Tweed, 17 (17): 45-, 1983

      2 S. H. Kim, 36 : 1197-, 2001

      3 J. L. Lee, 21 : 1527-, 1990

      4 이해우, "후판 용접부 횡균열 발생에 미치는 확산성수소의 영향" 대한용접접합학회 26 (26): 11-15, 2008

      5 이해우, "후판 용접부 횡균열 발생에 미치는 경화조직의 영향" 대한용접접합학회 26 (26): 5-10, 2008

      6 김가희, "철강 용착금속 미세조직의 정량화 기법 검증" 대한용접접합학회 23 (23): 27-33, 2005

      7 김희진, "용접금속의 저온균열에 미치는 미세조직의 영향" 대한용접접합학회 21 (21): 8-13, 2003

      8 S. Liu, "Welding Theory and Practice, Part 3"

      9 N. bailey, "Weldability of High Strength Steels" 389-396, 1993

      10 H. W. Lee, "Weld metal hydrogen-assisted cracking in thick steel plate weldments" 445 (445): 328-335, 2007

      11 J. R. Garland, "Toward improved submerged arc weld metals" 7 (7): s275-, 1975

      12 J. R. Garland, "Toward improved submerged arc weld metals" 7 (7): s320-, 1975

      13 R. A. Farrar, "The effect of prior austenite grain size on the transformation behaviour of C-Mn-Ni weld metal" 28 : 1385-1390, 1993

      14 P. H. M. Hart, "Resistance to hydrogen cracking in steel weld metal" 65 (65): 14-22, 1986

      15 H. J. Kim, "Microstructural characteristics of steel weld metal" 18 (18): 565-572, 2000

      16 J. M. Dowling, "Inclusion phases and the nucleation of acicular ferrite in submerged arc welds in high strength low alloy steels" 17 : 1611-1623, 1986

      17 S. S. Babu, "Inclusion formation and microstructure evolution in low alloy steel welds" 42 (42): 1344-1353, 2002

      18 T. Boniszewski, "Hydrogen embrittlement and heataffected zone cracking in low carbon alloy steels with acicular microstructures" 12 (12): 14-36, 1965

      19 F. Watkinson, "Hydrogen cracking in high strength weld metal" 58 (58): 417-424, 1969

      20 T. Boniszewski, "Hydrogen Embrittlement in Low Carbon Nickel and Manganese Steels" 12 (12): 349-362, 1965

      21 서준석, "FCA용착금속에서 발생하는 저온균열의 특성" 대한용접접합학회 25 (25): 4-8, 2007

      22 A. P. Chakravarti, "Evaluation of weld metal cold cracking using the G-BOP test" 68 (68): 1s-, 1989

      23 H. J. Kim, "Evaluation Methods for Cold Crack Susceptibility of Deposited Metal" 20 (20): 429-436, 2002

      24 B. J. Kim, "Effects of inclusions and microstructures on impact energy of high-input Submerged-Arc-Weld metals" 127 : 204-213, 2005

      25 T. Boniszewski, "Effect of weld microstructures on hydrogen-induced cracking in transformation steels" 7 (7): 90-, 1973

      26 Hui-Jun Yi, "Effect of microstructure and chemical composition on cold crack susceptibility of high-strength weld metal" 대한기계학회 25 (25): 2185-2193, 2011

      27 R. J. Parageter, "Effect of arc energy, plate thickness and preheat on C-Mn steel weld metal hydrogen cracking" TWI 461-, 1992

      28 서준석, "Effect of Grain Boundary Ferrite on Susceptibility to Cold Cracking in High-strength Weld Metal" 대한금속·재료학회 14 (14): 515-522, 2008

      29 D. S. Tayler, "Development of MMA electrodes for offshore fabrication" 15 (15): 438-443, 1983

      30 H. J. Kim, "Developing of Welding Consumable for Controlling the Cold Cracking in Steel Deposited Metal" 20 (20): 259-264, 2002

      31 S. S. Babu, "Acicular ferrite and bainite in Fe-Cr-C weld deposits" University of Cambrige 1991

      32 C. L. Choi, "A Study of Microstructural Progression in As- Deposited Weld Metal" 5Z : 232s-, 1978

      33 M. J. Robins, "A Review of the effect of microstructure on hydrogen embrittlement of high strength offshore steels" Offshore Shore Technology 1999

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      2026 평가예정 재인증평가 신청대상 (재인증)
      2020-01-01 평가 등재학술지 유지 (재인증) KCI등재
      2017-01-01 평가 등재학술지 유지 (계속평가) KCI등재
      2016-01-05 학술지명변경 외국어명 : Journal of The Korean Welding and Joining Society -> Journal of Welding and Joining KCI등재
      2013-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2010-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2008-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2007-02-20 학회명변경 한글명 : 대한용접학회 -> 대한용접접합학회
      영문명 : The Korean Welding Society -> The Korean Welding and Joining Society
      KCI등재
      2007-02-20 학술지명변경 한글명 : 대한용접학회지 -> 대한용접접합학회지
      외국어명 : Journal of The Korean Welding Society -> Journal of The Korean Welding and Joining Society
      KCI등재
      2006-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2004-01-01 평가 등재학술지 유지 (등재유지) KCI등재
      2001-07-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      1999-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 0.38 0.38 0.35
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      0.33 0.3 0.458 0.22
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