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9 "Gas Atomization"
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Selective Laser Sintering of Co-Cr Alloy Powders and Sintered Products Properties
Dong-Wan Lee, Minh-Thuyet Nguyen, Jin-Chun Kim
J Powder Mater. 2023;30(1):7-12.   Published online February 1, 2023
DOI: https://doi.org/10.4150/KPMI.2023.30.1.7
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Metal-additive manufacturing techniques, such as selective laser sintering (SLS), are increasingly utilized for new biomaterials, such as cobalt-chrome (Co-Cr). In this study, Co-Cr gas-atomized powders are used as charge materials for the SLS process. The aim is to understand the consolidation of Co-Cr alloy powder and characterization of samples sintered using SLS under various conditions. The results clearly suggest that besides the matrix phase, the second phase, which is attributed to pores and oxidation particles, is observed in the sintered specimens. The as-built samples exhibit completely different microstructural features compared with the casting or wrought products reported in the literature. The microstructure reveals melt pools, which represent the characteristics of the scanning direction, in particular, or of the SLS conditions, in general. It also exposes extremely fine grain sizes inside the melt pools, resulting in an enhancement in the hardness of the as-built products. Thus, the hardness values of the samples prepared by SLS under all parameter conditions used in this study are evidently higher than those of the casting products.

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Investigation on Microstructure and Flowability of Gas Atomized Heat-resistant KHR45A Alloy Powders for Additive Manufacturing
Geonwoo Baek, Mohsen Saboktakin Rizi, Yeeun Lee, SungJae Jo, Joo-Hyun Choi, Soon-Jik Hong
J Powder Mater. 2023;30(1):13-21.   Published online February 1, 2023
DOI: https://doi.org/10.4150/KPMI.2023.30.1.13
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In additive manufacturing, the flowability of feedstock particles determines the quality of the parts that are affected by different parameters, including the chemistry and morphology of the powders and particle size distribution. In this study, the microstructures and flowabilities of gas-atomized heat-resistant alloys for additive manufacturing applications are investigated. A KHR45A alloy powder with a composition of Fe-30Cr-40Mn-1.8Nb (wt.%) is fabricated using gas atomization process. The microstructure and effect of powder chemistry and morphology on the flow behavior are investigated by scanning electron microscopy (SEM), X-ray diffraction (XRD), X-ray photoelectron spectroscopy (XPS), and revolution powder analysis. The results reveal the formation of spherical particles composed of single-phase FCC dendritic structures after gas atomization. SEM observations show variations in the microstructures of the powder particles with different size distributions. Elemental distribution maps, line scans, and high-resolution XPS results indicate the presence of a Si-rich oxide accompanied by Fe, Cr, and Nb metal oxides in the outer layer of the powders. The flowability behavior is found to be induced by the particle size distribution, which can be attributed to the interparticle interactions and friction of particles with different sizes.

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  • Al-based amorphous coatings by warm spraying: Numerical simulation and experimental validation
    Deming Wang, Nianchu Wu, Peng Cao
    Journal of Alloys and Compounds.2024; 1008: 176674.     CrossRef
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Optimization of VIGA Process Parameters for Power Characteristics of Fe-Si-Al-P Soft Magnetic Alloy using Machine Learning
Sung-Min Kim, Eun-Ji Cha, Do-Hun Kwon, Sung-Uk Hong, Yeon-Joo Lee, Seok-Jae Lee, Kee-Ahn Lee, Hwi-Jun Kim
J Powder Mater. 2022;29(6):459-467.   Published online December 1, 2022
DOI: https://doi.org/10.4150/KPMI.2022.29.6.459
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Soft magnetic powder materials are used throughout industries such as motors and power converters. When manufacturing Fe-based soft magnetic composites, the size and shape of the soft magnetic powder and the microstructure in the powder are closely related to the magnetic properties. In this study, Fe-Si-Al-P alloy powders were manufactured using various manufacturing process parameter sets, and the process parameters of the vacuum induction melt gas atomization process were set as melt temperature, atomization gas pressure, and gas flow rate. Process variable data that records are converted into 6 types of data for each powder recovery section. Process variable data that recorded minute changes were converted into 6 types of data and used as input variables. As output variables, a total of 6 types were designated by measuring the particle size, flowability, apparent density, and sphericity of the manufactured powders according to the process variable conditions. The sensitivity of the input and output variables was analyzed through the Pearson correlation coefficient, and a total of 6 powder characteristics were analyzed by artificial neural network model. The prediction results were compared with the results through linear regression analysis and response surface methodology, respectively.

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The Effects of TiC Content on Microstructure of Modified A6013-3wt.%Si Alloy Powder Compact
Hyo-Sang Yoo, Yong-Ho Kim, Hyeon-Taek Son
J Powder Mater. 2022;29(1):28-33.   Published online February 1, 2022
DOI: https://doi.org/10.4150/KPMI.2022.29.1.28
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Aluminum-based powders have attracted attention as key materials for 3D printing owing to their low density, high specific strength, high corrosion resistance, and formability. This study describes the effects of TiC addition on the microstructure of the A6013 alloy. The alloy powder was successfully prepared by gas atomization and further densified using an extrusion process. We have carried out energy dispersive X-ray spectrometry (EDS) and electron backscatter diffraction (EBSD) using scanning electron microscopy (SEM) in order to investigate the effect of TiC addition on the microstructure and texture evolution of the A6013 alloy. The atomized A6013-xTiC alloy powder is fine and spherical, with an initial powder size distribution of approximately 73 μm which decreases to 12.5, 13.9, 10.8, and 10.0 μm with increments in the amount of TiC.

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  • Influence of Curing Agent Amount on Properties of Dynamic Vulcanized Phenyl Silicone Rubber-SEBS-SBS System
    Chunxu Zhao, Bobing He, Xian Chen
    Polymers.2022; 14(24): 5443.     CrossRef
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Manufacture of AlSi10Mg Alloy Powder for Powder Bed Fusion(PBF) Process using Gas Atomization Method
Weon Bin Im, Seung Joon Park, Yeo Chun Yun, Byeong Cheol Kim
J Korean Powder Metall Inst. 2021;28(2):120-126.   Published online April 1, 2021
DOI: https://doi.org/10.4150/KPMI.2021.28.2.120
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  • 1 Citations
AbstractAbstract PDF

In this study, AlSi10Mg alloy powders are synthesized using gas atomization and sieving processes for powder bed fusion (PBF) additive manufacturing. The effect of nozzle diameter (ø = 4.0, 4.5, 5.0 and 8.0 mm) on the gas atomization and sieving size on the properties of the prepared powder are investigated. As the nozzle diameter decreases, the size of the manufactured powder decreases, and the uniformity of the particle size distribution improves. Therefore, the ø 4.0 mm nozzle diameter yields powder with superior properties. Spherically shaped powders can be prepared at a scale suitable for the PBF process with a particle size distribution of 10–45 μm. The Hausner ratio value of the powder is measured to be 1.24. In addition, the yield fraction of the powder prepared in this study is 26.6%, which is higher than the previously reported value of 10–15%. These results indicate that the nozzle diameter and the post-sieve process simultaneously influence the shape of the prepared powder as well as the satellite powder on its surface.

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  • Evaluation of a Laboratory-Scale Gas-Atomized AlSi10Mg Powder and a Commercial-Grade Counterpart for Laser Powder Bed Fusion Processing
    Fabrizio Marinucci, Alberta Aversa, Diego Manfredi, Mariangela Lombardi, Paolo Fino
    Materials.2022; 15(21): 7565.     CrossRef
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Microstructural Characterization of Gas Atomized Copper-Iron Alloys with Composition and Powder Size
Sardar Farhat Abbas, Taek-Soo Kim
J Korean Powder Metall Inst. 2018;25(1):19-24.   Published online February 1, 2018
DOI: https://doi.org/10.4150/KPMI.2017.25.1.19
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Cu-Fe alloys (CFAs) are much anticipated for use in electrical contacts, magnetic recorders, and sensors. The low cost of Fe has inspired the investigation of these alloys as possible replacements for high-cost Cu-Nb and Cu-Ag alloys. Here, alloys of Cu and Fe having compositions of Cu100-xFex (x = 10, 30, and 50 wt.%) are prepared by gas atomization and characterized microstructurally and structurally based on composition and powder size with scanning electron microscopy (SEM) and X-ray diffraction (XRD). Grain sizes and Fe-rich particle sizes are measured and relationships among composition, powder size, and grain size are established. Same-sized powders of different compositions yield different microstructures, as do differently sized powders of equal composition. No atomic-level alloying is observed in the CFAs under the experimental conditions.

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Investigation of Spark Plasma Sintering Temperature on Microstructure and Thermoelectric Properties of p-type Bi-Sb-Te alloys
Jin-Koo Han, Dong-won Shin, Babu Madavali, Soon-Jik Hong
J Korean Powder Metall Inst. 2017;24(2):115-121.   Published online April 1, 2017
DOI: https://doi.org/10.4150/KPMI.2017.24.2.115
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AbstractAbstract PDF

In this work, p-type Bi−Sb−Te alloys powders are prepared using gas atomization, a mass production powder preparation method involving rapid solidification. To study the effect of the sintering temperature on the microstructure and thermoelectric properties, gas-atomized powders are consolidated at different temperatures (623, 703, and 743 K) using spark plasma sintering. The crystal structures of the gas-atomized powders and sintered bulks are identified using an X-ray diffraction technique. Texture analysis by electron backscatter diffraction reveals that the grains are randomly oriented in the entire matrix, and no preferred orientation in any unique direction is observed. The hardness values decrease with increasing sintering temperature owing to a decrease in grain size. The conductivity increases gradually with increasing sintering temperature, whereas the Seebeck coefficient decreases owing to increases in the carrier mobility with grain size. The lowest thermal conductivity is obtained for the bulk sintered at a low temperature (603 K), mainly because of its fine-grained microstructure. A peak ZT of 1.06 is achieved for the sample sintered at 703 K owing to its moderate electrical conductivity and sustainable thermal conductivity.

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  • Influence of the SPS heating rate on the optical and mechanical properties of Y2O3-MgO nanocomposites
    Seok-Min Yong
    Journal of Ceramic Processing Research.2019; 20(1): 59.     CrossRef
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Investigation on Fe-Hf-B-Nb-P-C Soft Magnetic Powders Prepared by High-Pressure Gas Atomization
Jae Won Jeong, Dong-Yeol Yang, Ki Bong Kim, Junhong Lee, Young Ja Kim, Tae-Soo Lim, Sangsun Yang, Min Ha Lee, Hwi Jun Kim, Yong-Jin Kim
J Korean Powder Metall Inst. 2016;23(5):391-396.   Published online October 1, 2016
DOI: https://doi.org/10.4150/KPMI.2016.23.5.391
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AbstractAbstract PDF

In this study, ultra-fine soft-magnetic micro-powders are prepared by high-pressure gas atomization of an Fe-based alloy, Fe-Hf-B-Nb-P-C. Spherical powders are successfully obtained by disintegration of the alloy melts under high-pressure He or N2 gas. The mean particle diameter of the obtained powders is 25.7 μm and 42.1 μm for He and N2 gas, respectively. Their crystallographic structure is confirmed to be amorphous throughout the interior when the particle diameter is less than 45 μm. The prepared powders show excellent soft magnetic properties with a saturation magnetization of 164.5 emu/g and a coercivity of 9.0 Oe. Finally, a toroidal core is fabricated for measuring the magnetic permeability, and a μr of up to 78.5 is obtained. It is strongly believed that soft magnetic powders prepared by gas atomization will be beneficial in the fabrication of high-performance devices, including inductors and motors.

Citations

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  • Optimization of Densification Behavior of a Soft Magnetic Powder by Discrete Element Method and Machine Learning
    Jungjoon Kim, Dongchan Min, Suwon Park, Junhyub Jeon, Seok-Jae Lee, Youngkyun Kim, Hwi-Jun Kim, Youngjin Kim, Hyunjoo Choi
    MATERIALS TRANSACTIONS.2022; 63(10): 1304.     CrossRef
  • Optimizing the magnetic properties of Fe-based amorphous powder by adjusting atomic structures from vitrification at different temperatures
    Song-Yi Kim, Hye-Ryeong Oh, Hyeon-Ah Kim, A-Young Lee, Hwi-Jun Kim, Sang-Sun Yang, Yong-Jin Kim, Hyun-Joo Choi, Il-Hyun Kim, Hyun-Gil Kim, Jürgen Eckert, Jong-Ryoul Kim, Min-Ha Lee
    Journal of Applied Physics.2019;[Epub]     CrossRef
  • Soft magnetic properties of Fe-based amorphous/nanocrystalline hybrid materials
    Yeonjoo Lee, Jonggyu Jeon, Seungjin Nam, Teasuk Jang, Hwijun Kim, Minwoo Lee, Yongjin Kim, Dongyeol Yang, Kyeongsik Min, Hyunjoo Choi
    Powder Technology.2018; 339: 440.     CrossRef
Research Article
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Effects of Hydrogen Reduction in Microstructure, Mechanical and Thermoelectric Properties of Gas Atomized n-type Bi2Te2.7 Se0.3 Material
Pradip Rimal, Sang-Min Yoon, Eun-Bin Kim, Chul-Hee Lee, Soon-Jik Hong
J Korean Powder Metall Inst. 2016;23(2):126-131.   Published online April 1, 2016
DOI: https://doi.org/10.4150/KPMI.2016.23.2.126
  • 83 View
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  • 6 Citations
AbstractAbstract PDF

The recent rise in applications of thermoelectric materials has attracted interest in studies toward the fabrication of thermoelectric materials using mass production techniques. In this study, we successfully fabricate n-type Bi2Te2.7Se0.3 material by a combination of mass production powder metallurgy techniques, gas atomization, and spark plasma sintering. In addition, to examine the effects of hydrogen reduction in the microstructure, the thermoelectric and mechanical properties are measured and analyzed. Here, almost 60% of the oxygen content of the powder are eliminated after hydrogen reduction for 4 h at 360°C. Micrographs of the powder show that the reduced powder had a comparatively clean surface and larger grain sizes than unreduced powder. The density of the consolidated bulk using as-atomized powder and reduced atomized powder exceeds 99%. The thermoelectric power factor of the sample prepared by reduction of powder is 20% better than that of the sample prepared using unreduced powder.

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  • Tuning of power factor in bismuth selenide through Sn/Te co doping for low temperature thermoelectric applications
    Ganesh Shridhar Hegde, Ashwatha Narayana Prabhu, Ramakrishna Nayak, C. F. Yang, Y. K. Kuo
    Applied Physics A.2024;[Epub]     CrossRef
  • Enhancing thermoelectric performance of K-doped polycrystalline SnSe through band engineering tuning and hydrogen reduction
    Nan Xin, Yifei Li, Guihua Tang, Longyun Shen
    Journal of Alloys and Compounds.2022; 899: 163358.     CrossRef
  • The effect of powder pre-treatment on the mechanical and thermoelectric properties of spark plasma sintered N-type bismuth telluride
    Ahmed A. Abdelnabi, Vickram Lakhian, Joseph R. McDermid, James S. Cotton
    Journal of Alloys and Compounds.2021; 874: 159782.     CrossRef
  • Investigation of Spark Plasma Sintering Temperature on Microstructure and Thermoelectric Properties of p-type Bi-Sb-Te alloys
    Jin-Koo Han, Dong-won Shin, Babu Madavali, Soon-Jik Hong
    Journal of Korean Powder Metallurgy Institute.2017; 24(2): 115.     CrossRef
  • The Preparation and Growth Mechanism of the Recovered Bi2Te3 Particles with Respect to Surfactants
    Hyeongsub So, Eunpil Song, Yong-Ho Choa, Kun-Jae Lee
    Journal of Korean Powder Metallurgy Institute.2017; 24(2): 141.     CrossRef
  • Enhanced thermoelectric cooling properties of Bi2Te3−xSex alloys fabricated by combining casting, milling and spark plasma sintering
    Seung Tek Han, Pradip Rimal, Chul Hee Lee, Hyo-Seob Kim, Yongho Sohn, Soon-Jik Hong
    Intermetallics.2016; 78: 42.     CrossRef

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