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Featured researches published by Joonoh Moon.


Metallurgical and Materials Transactions A-physical Metallurgy and Materials Science | 2015

Effect of Heat Input on Microstructure Evolution and Mechanical Properties in the Weld Heat-Affected Zone of 9Cr-2W-VTa Reduced Activation Ferritic-Martensitic Steel for Fusion Reactor

Joonoh Moon; Chang Hoon Lee; Tae-Ho Lee; Hyoung Chan Kim

The phase transformation and mechanical properties in the weld heat-affected zone (HAZ) of a reduced activation ferritic/martensitic steel were explored. The samples for HAZs were prepared using a Gleeble simulator at different heat inputs. The base steel consisted of tempered martensite and carbides through quenching and tempering treatment, whereas the HAZs consisted of martensite, δ-ferrite, and a small volume of autotempered martensite. The prior austenite grain size, lath width of martensite, and δ-ferrite fraction in the HAZs increased with increase in the heat input. The mechanical properties were evaluated using Vickers hardness and Charpy V-notch impact test. The Vickers hardness in the HAZs was higher than that in the base steel but did not change noticeably with increase in the heat input. The HAZs showed poor impact property due to the formation of martensite and δ-ferrite as compared to the base steel. In addition, the impact property of the HAZs deteriorated more with the increase in the heat input. Post weld heat treatment contributed to improve the impact property of the HAZs through the formation of tempered martensite, but the impact property of the HAZs remained lower than that of base steel.


Metallurgical and Materials Transactions A-physical Metallurgy and Materials Science | 2013

Tensile Deformation Behavior and Phase Transformation in the Weld Coarse-Grained Heat-Affected Zone of Metastable High-Nitrogen Fe-18Cr-10Mn-N Stainless Steel

Joonoh Moon; Tae-Ho Lee; Seongjun Park; Jae-il Jang; Min-Ho Jang; Heon-Young Ha; Byoungchul Hwang

The tensile deformation behavior and phase transformation in the weld coarse-grained heat-affected zone (CGHAZ) of a metastable high-nitrogen austenitic stainless steel was explored through tensile tests, nanoindentation experiments, and transmission electron microscopy analysis. True stress–strain response during tensile test was found to be seriously affected by δ-ferrite fraction, which depends on peak temperature of the CGHAZs. The strain-induced martensitic transformation (SIMT) occurred in base steel, whereas the SIMT disappeared and deformation twinning occurred predominantly in the CGHAZs. The relationship among true stress–strain response, nanoindentation hardness, and deformed microstructures was carefully investigated and discussed in terms of changes of stacking fault energy.


Metallurgical and Materials Transactions A-physical Metallurgy and Materials Science | 2015

Hot Ductility Behaviors in the Weld Heat-Affected Zone of Nitrogen-Alloyed Fe-18Cr-10Mn Austenitic Stainless Steels

Joonoh Moon; Tae-Ho Lee; Hyun-Uk Hong

Hot ductility behaviors in the weld heat-affected zone (HAZ) of nitrogen-alloyed Fe-18Cr-10Mn austenitic stainless steels with different nitrogen contents were evaluated through hot tension tests using Gleeble simulator. The results of Gleeble simulations indicated that hot ductility in the HAZs deteriorated due to the formation of δ-ferrite and intergranular Cr2N particles. In addition, the amount of hot ductility degradation was strongly affected by the fraction of δ-ferrite.


Journal of Welding and Joining | 2015

Microstructure and Mechanical Property in the Weld Heat-affected Zone of V-added Austenitic Fe-Mn-Al-C Low Density Steels

Joonoh Moon; Seongjun Park

Microstructure and tensile property in the weld heat-affected zone (HAZ) of austenitic Fe-Mn-Al-C low density steels were investigated through transmission electron microscopy analysis and tensile tests. The HAZ samples were prepared using Gleeble simulation with high heat input welding condition of 300 kJ/cm, and the HAZ peak temperature of 1200℃ was determined from differential scanning calorimetry (DSC) test. The strain- stress responses of base steels showed that the addition of V improved the tensile and yield strength by grain refinement and precipitation strengthening. Tensile strength and elongation decreased in the weld HAZ as compared to the base steel, due to grain growth, while V-added steel had a higher HAZ strength as compared than V-free steel.


international sige technology and device meeting | 2006

Performance Boosting of Peripheral Transistor for High Density 4Gb DRAM Technologies by SiGe Selective Epitaxial Growth Technique

In-Soo Jung; Seol-Mae Lee; Dong-Ho Lee; Euni Lee; Wonhee Kim; Peter Kyungchul Kang; Yong-Hwan Son; Sae-Kyoung Kang; Jong-Boo Kim; Ye-Ram Kim; Ko-Hsin Lee; Min-Gyu Kang; Heonhwan Kim; Jong-Wook Lee; Yu-gyun Shin; U-In Chung; Joonoh Moon

The SiGe SD structure in peripheral PMOS area of DRAM was successfully integrated without any degradation of peripheral NMOS properties, which is the first approach to DRAM. The PMOS performance enhancement was found to be more than 40%. The authors suggest the SiGe SD structure as the key solution for the improvement of peripheral PMOS transistor properties in sub-50nm DRAM technology


Journal of the Korean Welding and Joining Society | 2010

Prediction Model for the Microstructure and Properties in Weld Heat Affected Zone: V. Prediction Model for the Phase Transformation Considering the Influence of Prior Austenite Grain Size and Cooling Rate in Weld HAZ of Low Alloyed Steel

Sanghoon Kim; Joonoh Moon; Yoon-Ki Lee; Hong-Chul Jeong; Changhee Lee

Abstract In this study, to predict the microstructure in weld HAZ of low alloyed steel, prediction model for the phase transformation considering the influence of prior austenite grain size and cooling rate was developed. For this study, six low alloyed steels were designed and the effect of alloying elements was also investigated.In order to develop the prediction model for ferrite transformation, isothermal ferrite transformation behaviors were analyzed by dilatometer system and ‘Avrami equation’ which was modified to consider the effect of prior austenite grain size. After that, model for ferrite phase transformation during continuous cooling was proposed based on the isothermal ferrite transformation model through applying the ‘Additivityrule’. Also, start temperatures of ferrite transformation were predicted by A r3 considering the cooling rate. CCT diagram was calculated through this model, these results were in good agreement with the experimental results. After ferrite transformation, bainite transformation was predicted using Esaka model which corresponded most closely to the experimental results among various models. The start temperatures of bainite transformation were determined using K. J. Lee model. Phase fraction of martensite was obtained according to phase fractions of ferrite and bainite.Key Words : Phase transformation, Avrami equation, Prior austenite grain size, Heat affected zone, Modelling


Materials | 2018

Investigation of the Localized Corrosion and Passive Behavior of Type 304 Stainless Steels with 0.2–1.8 wt % B

Heon-Young Ha; Jae Jang; Tae-Ho Lee; Chihyoung Won; Chang-Hoon Lee; Joonoh Moon; Chang-Geun Lee

The pitting corrosion resistance and passive behavior of type 304 borated stainless steels (Febalance–18Cr–12Ni–1.5Mn–(0.19, 0.78, and 1.76 wt %)B) manufactured through conventional ingot metallurgy were investigated. The alloys were composed of an austenitic matrix and Cr2B phase, and the volume fraction of Cr2B increased from 1.68 to 22.66 vol % as the B content increased from 0.19 to 1.76 wt %. Potentiodynamic polarization tests measured in aqueous NaCl solutions revealed that the pitting corrosion resistance was reduced as the B content increased and the pits were initiated at the matrix adjacent to the Cr2B phase. It was found that the reduced resistance to pitting corrosion by B addition was due to the formation of more defective and thinner passive film and increased pit initiation sites in the matrix.


Journal of the Korean Welding and Joining Society | 2007

Prediction Model for the Microstructure and Properties in Weld Heat Affected Zone : IV. Critical Particle Size for the Particle Coarsening Kinetics in Weld HAZ of Ti Added Low Alloyed Seel

Joonoh Moon; Sanghoon Kim; Hong-Chul Jeong; Jongbong Lee; Changhee Lee

A kinetic model fur the particle coarsening behavior was developed. The proposed model considered the critical particle size which can be derived from Gibbs-Thomson equation unlike the conventional approach. In this study, the proposed particle coarsening model was applied to study the coarsening behavior of titanium nitride (TiN particle) in microalloyed steel weld HAZ. Particle size distributions and mean particle size by the proposed model were in agreement with the experimental results. Meanwhile, using additivity rule, the isothermal model was extended to predict particle coarsening behavior during continuous thermal cycle.


Isij International | 2004

Prediction model for the austenite grain size in the coarse grained heat affected zone of Fe-C-Mn steels: Considering the effect of initial grain size on isothermal growth behavior

Sang-Ho Uhm; Joonoh Moon; Changhee Lee; Ji Hyun Yoon; Bongsang Lee


Materials Science and Engineering A-structural Materials Properties Microstructure and Processing | 2007

Prediction for the austenite grain size in the presence of growing particles in the weld HAZ of Ti-microalloyed steel

Joonoh Moon; Jongbong Lee; Changhee Lee

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Jun-Yun Kang

Seoul National University

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Chang-Hoon Lee

Seoul National University

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Heung Nam Han

Seoul National University

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Hyun-Uk Hong

Changwon National University

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