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Microstructure and Hardness of Yb:YAG Disc Laser Surface Overlap Melted Cold Die Steel, STD11

Yb:YAG 디스크 레이저로 표면 오버랩 용융된 냉간금형강, STD11의 미세조직과 경도

  • Lee, Kwang-Hyeon (Korea Institute of Machinery & Materials, Busan Laser Application Support Center) ;
  • Choi, Seong-Won (Dept. of Material Science and Engineering, Pusan National University) ;
  • Yun, Jung Gil (Dept. of Material Science and Engineering, Pusan National University) ;
  • Oh, Myeong-Hwan (Dept. of Material Science and Engineering, Pusan National University) ;
  • Kim, Byung Min (School of Mechanical Engineering, Pusan National University) ;
  • Kang, Chung-Yun (Dept. of Material Science and Engineering, Pusan National University)
  • 이광현 (한국기계연구원 부산레이저기술지원센터) ;
  • 최성원 (부산대학교 재료공학부) ;
  • 윤중길 (부산대학교 재료공학부) ;
  • 오명환 (부산대학교 재료공학부) ;
  • 김병민 (부산대학교 기계공학부) ;
  • 강정윤 (부산대학교 재료공학부)
  • Received : 2015.09.27
  • Accepted : 2015.10.19
  • Published : 2015.10.01

Abstract

Laser surface Melting Process is getting hardening layer that has enough depth of hardening layer as well as no defects by melting surface of substrate. This study used CW(Continuous Wave) Yb:YAG and STD11. Laser beam speed, power and beam interval are fixed at 70mm/sec, 2.8kW and 800um respectively. Hardness in the weld zone are equal to 400Hv regardless of melting zone, remelting zone overlapped by next beam and HAZ. Similarly, microstructures in all weld zone consist of dendrite structure that arm spacing is $3{\sim}4{\mu}m$, matrix is ${\gamma}$(Austenite) and dendrite boundary consists of ${\gamma}$ and $M_7C_3$ of eutectic phase. This microstructure crystallizes from liquid to ${\gamma}$ of primary crystal and residual liquid forms ${\gamma}$ and $M_7C_3$ of eutectic phase by eutectic reaction at $1266^{\circ}C$. After solidification is complete, primary crystal and eutectic phase remain at room temperature without phase transformation by quenching. On the other hand, microstructures of substrate consist of ferrite, fine $M_{23}C_6$ and coarse $M_7C_3$ that have 210Hv. Microstructures in the HAZ consist of fine $M_{23}C_6$ and coarse $M_7C_3$ like substrate. But, $M_{23}C_6$ increases and matrix was changed from ferrite to bainite that has hardness above 400Hv. Partial Melted Zone is formed between melting zone and HAZ. Partial Melted Zone near the melting zone consists of ${\gamma}$, $M_7C_3$ and martensite and Partial Melted Zone near the HAZ consists of eutectic phase around ${\gamma}$ and $M_7C_3$. Hardness is maximum 557Hv in the partial melted zone.

Keywords

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