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구재민(Jae-Mean Koo),이시영(Si-Young Lee),석창성(Chang-Sung Seok) Korean Society for Precision Engineering 2013 한국정밀공학회지 Vol.30 No.8
Thermal barrier coating (TBC) is used to protect substrates and extend the operating life of gas turbines in power plant and aeronautical applications. The major causes of failure of such coatings is spallation, which results from thermal stress due to a thermal expansion coefficient mismatch between the top coating and the bond coating layers. In this paper, the effects of the material properties and the thickness of the top coating layer on thermal stresses were evaluated using the finite element method and the equation for the thermal expansion coefficient mismatch stress. In addition, we investigated a design technique for the top coating whereby thermal resistance is exploited.
구재민(Jae-Mean Koo),석창성(Chang-Sung Seok) Korean Society for Precision Engineering 2014 한국정밀공학회지 Vol.31 No.1
Thermal barrier coating (TBC) is used to protect the substrate and extend the operating life of the gas turbine for a power plant and an aircraft. The major cause of failure of such a coating is the spallation of coating, and it results from the thermal stress between top coating and bond coating. To improve the durability of TBC system, the dense vertical cracked (DVC) coating method to insert vertical cracks is applied to a gas turbine blade. In this study, a criterion for the design of vertical crack in the DVC coating was presented using the finite element analysis.
구재민(Jae-Mean Koo),석창성(Chang-Sung Seok),강민성(Min-Sung Kang),김대진(Dae-Jin Kim),이동훈(Dong-Hoon Lee),김문영(Mun-Young Kim) 대한기계학회 2010 大韓機械學會論文集A Vol.34 No.4
가스터빈 블레이드는 터빈 가동 시 발생하는 고온화염으로부터 블레이드를 보호하고, 구조물의 표면 온도를 안전한 수준으로 낮추기 위하여 블레이드 표면에 열차폐 코팅(TBC; Thermal barrier coating)을 하여 사용하고 있다. 본 논문에서는 가스터빈 1단 블레이드에 적용되는 코팅 방식을 이용하여 코인형 시험편을 제작하였고 열화 온도 및 유지 시간의 변화에 따른 코팅 계면 산화물의 성장 거동을 분석하였다. 코팅 단면에 대하여 코팅 계면 산화물의 두께와 마이크로 비커스 경도를 측정하여 열화 특성을 평가 하였다. 또한 성분분석을 통하여 미세조직의 변화를 관찰함으로써 열차폐 코팅의 열적 열화특성을 평가하였다. The thermal barrier coating of a gas turbine blade was degraded by isothermal heating in a furnace and by varying the exposure time and temperature. Then, a micro-Vickers hardness test was conducted on the cross section of the bond coat and Ni-based superalloy substrate. Further, the thickness of TGO(Thermally Grown Oxide) was measured by using an image analyzer, and the changes in the microstructure and element contents in the coating were analyzed by using an optical microscope and by performing SEM-EDX analysis. No significant change was observed in the Vickers hardness of the bond coat when the coated specimen was degraded at a high temperature; delamination was observed between the top coat and the bond coat when the coating was degraded for 50 h at a temperature 1,151℃.
박재실(Jae Sil Park),석창성(Chang Sung Seok),구재민(Jae Mean Koo),신재호(Jae Ho Shin),구병춘(Byeong Choon Goo) Korean Society for Precision Engineering 2004 한국정밀공학회지 Vol.21 No.12
We compared the fatigue characteristics of weld metal with those of base metal, and not heat-treated with heat-treated. Also, we examined the influence of bead in a viewpoint of fatigue life. From the experimental results, it has been seen that the fatigue characteristics of welded specimens grinded the toe of bead are slightly better than not grinded. We have seen that the fatigue life is affected more by the stress concentration on the profile change in the weld toe rather than by residual stress influence, because heat-treated or not had almost no influence on the fatigue characteristics.
수정된 하중비법을 이용한 배관 시험편의 균열 길이 계산
최정훈(Jung-Hun Choi),구재민(Jae-Mean Koo),석창성(Chang-Sung Seok),허용(Yong Huh),박재실(Jae-Sil Park) 대한기계학회 2009 大韓機械學會論文集A Vol.33 No.12
The objective of this paper is to apply the load ratio method to the measurement of the crack length of the real scale pipe specimen. The load ratio method was modified and finite element analyses were performed to derive the relationship between the normalized compliance and the normalized crack length for the pipe specimen. In order to measure the crack length, the direct current potential drop method and the modified load ratio method were applied to the pipe test. The applicability of the modified load ratio method was confirmed by comparing the calculated crack length with the measured crack length from the pipe experiment.
협계용접부 강도 불균일을 고려한 소성 η계수 평가 (I)
허용,김형익,선광상,구재민,석창성,Huh, Yong,Kim, Hyung-Ick,Seon, Kwang-Sang,Koo, Jae-Mean,Seok, Chang-Sung 대한기계학회 2008 大韓機械學會論文集A Vol.32 No.6
This study evaluated the influence of the strength mismatch of HAZ for a plastic ${\eta}$-factor, which is the principle parameter determining the plastic portion of J-integral to assess the fracture toughness of the weldment. The specimen of tensile and hardness test was manufactured from the piping applying narrow-gap welding, and the mechanical properties of weldment, HAZ and a base metal were obtained. To perform the finite element analysis according to the ratio of strength mismatch, the material properties was chosen with the change of strength using the determination method of Ramberg-Osgood constant. Also, the influence of the strength mismatch of HAZ was determined using finite element analysis by those properties.
강민성(Min Sung Kang),구재민(Jae Mean Koo),석창성(Chang Sung Seok),박재실(Jae Sil Park) 대한기계학회 2010 大韓機械學會論文集A Vol.34 No.6
최근에는 물류비용의 증가로 인한 경제적 문제 해결과 사용자의 편의성, 효율 증대를 위하여 많은 사무용 기기 및 가전제품의 부품이 고분자 복합재료로 대체되고 있다. 금속 재료와 비교해 볼 때 이러한 고분자 복합재료는 내구 한도가 낮고 환경에 따라 변형이 심하여 사용 횟수의 증가 및 사용 시간의 증가로 인해 피로 파괴 문제가 빈번하게 발생하고 있다. 본 논문에서는 최근 많이 사용되고 있는 HIPS(High Impact Polystyrene, HR-1360) 재료를 대상으로 하여 20℃ (상온), 40℃, 60℃ 환경 조건에서의 정적 강도 특성을 평가하였으며, 피로 시험을 통하여 HIPS 재료의 피로 수명(S-N) 선도를 구하였다. 또한 마이크로 비커스 경도 시험기를 이용한 경도 시험을 통해 인장강도와 내구 한도를 예측해 보았다. In recent times, there has been considerable interest in HIPS (High Impact Polystyrene) materials for their use in construction of office equipments, home electronics, housing for electronics appliances, packing containers, etc. However, these materials suffer from problems caused by fatigue fracture. Further, their strength is substantially affected by environmental conditions. Therefore, in this study, the effect of temperature was analyzed by performing a tensile test and a fatigue test. It was observed that the yield strength, the ultimate strength, and the fatigue life decreased relatively with an increase in temperature. Further, an S-N curve can be predicted by using the results of the tensile test and a micro-Vickers hardness test.