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    RH 공정 조건이 다른 TMCP강의 개재물 및 기계적 특성 = Inclusions and Mechanical Properties of TMCP Steel under Different RH Process Conditions

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    https://www.riss.kr/link?id=A108505702

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    TMCP(Thermo Mechanical Control Process) steel was continuously cast (CC) by varying the argon gas flow rate and vacuum time in the Ruhrstahl Heraeus (RH) refining process. Using the CC specimens, the distribution of the inclusions and the mechanical properties were evaluated. A lot of oxides and Al-O type inclusions were observed. The average Vickers hardness did not show a constant, but showed dispersion in a certain range. The shape and scale parameters of the CC specimen with an argon gas flow rate of 160Nm3 and a vacuum time of 12 minutes was the best. Mechanical properties (tensile strength, yield strength and elongation) were consistent with the Weibull probability distribution analysis results. The impact resistance was the best for CC specimens with an argon flow rate of 140 Nm3 and a vacuum time of 12 minutes. Although the inclusions and mechanical properties of the CC specimens were evaluated according to the argon gas flow rate and vacuum time, these values were no significant difference.
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    TMCP(Thermo Mechanical Control Process) steel was continuously cast (CC) by varying the argon gas flow rate and vacuum time in the Ruhrstahl Heraeus (RH) refining process. Using the CC specimens, the distribution of the inclusions and the mechanical p...

    TMCP(Thermo Mechanical Control Process) steel was continuously cast (CC) by varying the argon gas flow rate and vacuum time in the Ruhrstahl Heraeus (RH) refining process. Using the CC specimens, the distribution of the inclusions and the mechanical properties were evaluated. A lot of oxides and Al-O type inclusions were observed. The average Vickers hardness did not show a constant, but showed dispersion in a certain range. The shape and scale parameters of the CC specimen with an argon gas flow rate of 160Nm3 and a vacuum time of 12 minutes was the best. Mechanical properties (tensile strength, yield strength and elongation) were consistent with the Weibull probability distribution analysis results. The impact resistance was the best for CC specimens with an argon flow rate of 140 Nm3 and a vacuum time of 12 minutes. Although the inclusions and mechanical properties of the CC specimens were evaluated according to the argon gas flow rate and vacuum time, these values were no significant difference.

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    참고문헌 (Reference)

    1 윤서현 ; 구세훈 ; 남기우, "뜨임한 구조용강 SCM435의 경도 및 충격 흡수에너지에 대한 신뢰성 평가" 한국산업융합학회 22 (22): 681-688, 2019

    2 C. Yang, "Water model on fine inclusion removal by bubble flotation in RH refining process" 528 : 107-111, 2014

    3 H. Maas, "The significance of the circulation rate on the vacuum treatment of liquid steel with the RH process" 19 : 199-203, 1969

    4 Y. G. Park, "The effect of operating parameters and dimensions of the RH system on melt circulation using numerical calculations" 41 : 403-409, 2001

    5 K. Ono, "The circulation rate of RH-degassing process by water model experiment" 52 : 149-157, 1981

    6 M. Wahlster, "Some technical and metallurgical aspects of the application of the RH process" 195 : 459-468, 1968

    7 H. Watanabe, "Some chemical engineering aspects of R-H degassing process" 54 : 1327-1342, 1968

    8 C. Yang, "Physical simulation of inclusions removal in 180t RH degasser" 750 (750): 375-379, 2013

    9 K. Peng, "Numerical simulation of decarburization reaction with oxygen blowing during RH refining process" 53 : 2004-2017, 2022

    10 R. Tsujino, "Numerical analysis of molten steel flow in ladle of RH process" 29 : 589-595, 1989

    1 윤서현 ; 구세훈 ; 남기우, "뜨임한 구조용강 SCM435의 경도 및 충격 흡수에너지에 대한 신뢰성 평가" 한국산업융합학회 22 (22): 681-688, 2019

    2 C. Yang, "Water model on fine inclusion removal by bubble flotation in RH refining process" 528 : 107-111, 2014

    3 H. Maas, "The significance of the circulation rate on the vacuum treatment of liquid steel with the RH process" 19 : 199-203, 1969

    4 Y. G. Park, "The effect of operating parameters and dimensions of the RH system on melt circulation using numerical calculations" 41 : 403-409, 2001

    5 K. Ono, "The circulation rate of RH-degassing process by water model experiment" 52 : 149-157, 1981

    6 M. Wahlster, "Some technical and metallurgical aspects of the application of the RH process" 195 : 459-468, 1968

    7 H. Watanabe, "Some chemical engineering aspects of R-H degassing process" 54 : 1327-1342, 1968

    8 C. Yang, "Physical simulation of inclusions removal in 180t RH degasser" 750 (750): 375-379, 2013

    9 K. Peng, "Numerical simulation of decarburization reaction with oxygen blowing during RH refining process" 53 : 2004-2017, 2022

    10 R. Tsujino, "Numerical analysis of molten steel flow in ladle of RH process" 29 : 589-595, 1989

    11 M. Hirase, "Manufacture of low-carbon steel by the RH degassing process" (154) : 459-, 1965

    12 T. Kuwabara, "Investigation of decarburization behavior in RH-reactor and itsoperation improvement" 28 : 305-313, 1988

    13 T. Kuwabara, "Investigation of decarburization behavior in RH-reactor and its operation improvement" 28 : 305-314, 1988

    14 Y. Kato, "Fluid flow in ladle and its effect on decarburization rate in RH degasser" 33 : 1088-1094, 1993

    15 C. Kamata, "Estimation of circulation flow rate in RH reactor using water model" 84 : 484-489, 1998

    16 J. Han, "Coordinated analysis of multiple factors of argon blowing parameters on the effect of circulation flow rate in RH vacuum refining process" 109 : 68-73, 2014

    17 F. Ahrenhold, "Circulation rate of liquid steel in RH degassers" 69 : 54-59, 1998

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