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      KCI등재 SCI SCIE SCOPUS

      Influence of Phase Composition in TiAlSiN Hard Coatings on the Evolution of Structure and Mechanical Properties

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      https://www.riss.kr/link?id=A107457925

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      다국어 초록 (Multilingual Abstract)

      The aim of this study is to investigate the structural evolution and mechanical properties of TiAlSiN coatings when processedby the arc ion plating method. To form a hard coating, Ti, Al, and Si powders were mechanically alloyed by planetary ballmilling; the powders were then densely compacted during a rapid sintering process into a ternary system coating, i.e. TiAlSi.
      The evolution of the structural phase from a powder to a compact material is dominated considerably by phase states suchas a supersaturated solid solution or intermetallic compounds. In the case of coating layers, the factors that determine thestructural evolution are associated with the phase stability of the nano-crystalline structure that in turn is associated withthe Ti/Al composition ratio. Motivated by this, we performed experiments to investigate the distribution of microstructures;the material’s binding energy, quantitative properties, transformation of crystal structure, and distribution of amorphous/crystalline were all recorded. In particular, the relationship between the physical and chemical properties during the coatingprocess is considered to be the dominant factor controlling the orientation and morphology of that zone (1, T, and 2). TheTiAlSiN coating layer was found to have hardness above 45 GPa and an adhesion above 100 N. In other words, understandingthe evolution and structure of TiAlSin helped us to produce a material with excellent properties that can be used as a hardcoating. Specifically, these properties were induced by a grain refinement of the nano-crystalline structure that correspondsto an increase in the silicon nitride contents.
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      The aim of this study is to investigate the structural evolution and mechanical properties of TiAlSiN coatings when processedby the arc ion plating method. To form a hard coating, Ti, Al, and Si powders were mechanically alloyed by planetary ballmilli...

      The aim of this study is to investigate the structural evolution and mechanical properties of TiAlSiN coatings when processedby the arc ion plating method. To form a hard coating, Ti, Al, and Si powders were mechanically alloyed by planetary ballmilling; the powders were then densely compacted during a rapid sintering process into a ternary system coating, i.e. TiAlSi.
      The evolution of the structural phase from a powder to a compact material is dominated considerably by phase states suchas a supersaturated solid solution or intermetallic compounds. In the case of coating layers, the factors that determine thestructural evolution are associated with the phase stability of the nano-crystalline structure that in turn is associated withthe Ti/Al composition ratio. Motivated by this, we performed experiments to investigate the distribution of microstructures;the material’s binding energy, quantitative properties, transformation of crystal structure, and distribution of amorphous/crystalline were all recorded. In particular, the relationship between the physical and chemical properties during the coatingprocess is considered to be the dominant factor controlling the orientation and morphology of that zone (1, T, and 2). TheTiAlSiN coating layer was found to have hardness above 45 GPa and an adhesion above 100 N. In other words, understandingthe evolution and structure of TiAlSin helped us to produce a material with excellent properties that can be used as a hardcoating. Specifically, these properties were induced by a grain refinement of the nano-crystalline structure that correspondsto an increase in the silicon nitride contents.

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      참고문헌 (Reference)

      1 P. H. Mayrhofer, 4 : 355-388, 2014

      2 K. Su, 34 (34): 504-510, 2018

      3 Q. Ma, 392 : 826-833, 2017

      4 T. Chaolakova, 27 : 15-24, 2014

      5 A. Inspektor, 257 : 138-153, 2014

      6 E. Horvath-Bordon, 35 : 987-1014, 2006

      7 J. Z. Kong, 381 : 125108-, 2020

      8 J. H. Hahn, 2020

      9 S. Y. Lee, 14 (14): 8993-8998, 2014

      10 Y. Iwai, 12 (12): 49-57, 2017

      1 P. H. Mayrhofer, 4 : 355-388, 2014

      2 K. Su, 34 (34): 504-510, 2018

      3 Q. Ma, 392 : 826-833, 2017

      4 T. Chaolakova, 27 : 15-24, 2014

      5 A. Inspektor, 257 : 138-153, 2014

      6 E. Horvath-Bordon, 35 : 987-1014, 2006

      7 J. Z. Kong, 381 : 125108-, 2020

      8 J. H. Hahn, 2020

      9 S. Y. Lee, 14 (14): 8993-8998, 2014

      10 Y. Iwai, 12 (12): 49-57, 2017

      11 B. A. Latella, 200 (200): 3605-3611, 2006

      12 L. Fieandt, 334 : 373-383, 2018

      13 J. H. Lee, 797 : 612-621, 2019

      14 S. S. Malvajerdi, 9 : 19101-, 2019

      15 F. Giuliani, 688 : 137363-, 2019

      16 J. L. Endrino, 59 (59): 6287-, 2011

      17 G. A. Almyras, 12 (12): 215-, 2019

      18 H. Huo, 378 : 012014-, 2018

      19 Y. Y. Chang, 204 (204): 992-996, 2009

      20 I. Endler, 215 : 133-140, 2013

      21 S. Carvalho, 398 : 391-396, 2001

      22 Y. J. Zhang, 125 : 6-12, 2016

      23 S. Zhang, 4 : 219-228, 2007

      24 P. H. Mayrhofer, 51 (51): 1032-1114, 2006

      25 I. Petrov, 12 (12): 2846-2854, 1994

      26 S. U. Kang, 58 : 1682-1688, 2015

      27 Y. Liu, 35 (35): 652-660, 2018

      28 D. Philippon, 270 (270): 541-549, 2011

      29 E. Ribeiro, 432–433 : 515-520, 2002

      30 P. Martin, 200 : 2228-2235, 2005

      31 D. Rafaja, 514 : 240-249, 2006

      32 V. D. Mote, 6 : 1-8, 2012

      33 L. B. McCusker, 32 : 36-50, 1999

      34 J. R. Tuck, 139 : 63-74, 2001

      35 M. A. Hassan, 277 : 216-221, 2015

      36 I. A. Abrikosov, 4 : 1599-1618, 2011

      37 L. Hultman, 57 (57): 1-30, 2000

      38 M. Hans, 7 (7): 1-7, 2017

      39 B. Stannowski, 93 (93): 2618-, 2003

      40 G. Yu, 15 (15): 581-, 1995

      41 G. M. Ingo, 7 : 3048-, 1989

      42 W. H. Chang, 11 : 1221-, 1993

      43 T. T. T. Hien, 113 (113): 647-653, 2005

      44 S. Sabooni, 35 (35): 439-447, 2012

      45 J. Labar, 23 (23): 647-660, 2017

      46 P. W. Shum, 185 (185): 245-253, 2004

      47 D. Vogtenhuber-Pawelczak, 84 : 211-219, 1991

      48 Y. H. Cheng, 204 : 2123-2129, 2010

      49 J. K. Chen, 36 : 335-340, 2012

      50 L. B. Zhao, "Influence of Microstructure Evolution on Mechanical Properties, Wear Resistance and Corrosion Resistance of Ti(C,N)-Based Cermet Tools with Various WC Additions" 대한금속·재료학회 27 (27): 2773-2781, 2021

      51 Jeong‑Han Lee, "Effect of Mechanical Alloying on the Microstructural Evolution of Al60Cr30Si10 Alloys Processed by Spark Plasma Sintering" 대한금속·재료학회 27 (27): 1147-1154, 2021

      52 Jeong‑Han Lee, "Characterization and Property Evaluation of Ti‑Based Target Materials and Their Nitride Nano‑composites Coating Layers" 대한금속·재료학회 25 (25): 268-276, 2019

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      학술지 이력

      학술지 이력
      연월일 이력구분 이력상세 등재구분
      2023 평가예정 해외DB학술지평가 신청대상 (해외등재 학술지 평가)
      2020-01-01 평가 등재학술지 유지 (해외등재 학술지 평가) KCI등재
      2009-12-29 학회명변경 한글명 : 대한금속ㆍ재료학회 -> 대한금속·재료학회 KCI등재
      2008-01-01 평가 SCI 등재 (등재유지) KCI등재
      2005-01-01 평가 등재학술지 선정 (등재후보2차) KCI등재
      2004-01-01 평가 등재후보 1차 PASS (등재후보1차) KCI등재후보
      2002-01-01 평가 등재후보학술지 선정 (신규평가) KCI등재후보
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      학술지 인용정보

      학술지 인용정보
      기준연도 WOS-KCI 통합IF(2년) KCIF(2년) KCIF(3년)
      2016 2.05 0.91 1.31
      KCIF(4년) KCIF(5년) 중심성지수(3년) 즉시성지수
      1.03 0.86 0.678 0.22
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