• Title/Summary/Keyword: Powder atomization

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Comparative Studies of Different Thermal Consolidation Techniques on Thermoelectric Properties of BiTeSe Alloy (BiTeSe 합금의 열적성형방법에 따른 열전특성)

  • Sharief, P.;Dharmaiah, P.;Lee, C.H.;Ahn, S.S.;Lee, S.H;Son, H.T;Hong, S.J.
    • Journal of the Korean Society for Heat Treatment
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    • v.31 no.3
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    • pp.126-134
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    • 2018
  • In this research, we produced polycrystalline n-type $Bi_2Te_{2.7}Se_{0.3}$ powder using water atomization. To obtain full benefit through water atomized powder, we have implemented spark plasma sintering and hot extrusion for powder compaction. The microstructure and thermoelectric properties were investigated and compared. The average grain size of SPS and extruded bulks were 3.08 and $3.86{\mu}m$ respectively. The extruded material microstructure contains layered grains with less grain boundaries and its counter-part SPS displays dense packed grains with high grain boundaries. Among both bulks, extrusion sample exhibited high power factor (PF) of $2.96{\times}10^{-3}Wm^{-1}K^{-2}$ which is 38% higher than SPS ($2.14{\times}10^{-3}$) bulk sample. Due to variations in grain size and grain boundaries, the SPS bulk shows low thermal conductivity than extruded bulk. However, the extruded bulk sample exhibited a peak ZT of 0.69 at 400 K, which is 19% higher than SPS bulk sample, due to its higher power factor.

Investigation of Spark Plasma Sintering Temperature on Microstructure and Thermoelectric Properties of p-type Bi-Sb-Te alloys

  • Han, Jin-Koo;Shin, Dong-won;Madavali, Babu;Hong, Soon-Jik
    • Journal of Powder Materials
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    • v.24 no.2
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    • pp.115-121
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    • 2017
  • 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.

Optimization of Metal Powder Particle Size Distribution for Powder Bed Fusion Process via Simulation (금속 Powder Bed Fusion 적층제조 기술의 분말 입도 최적화를 위한 시뮬레이션)

  • Lee, Hwaseon;Kim, Dae-Kyeom;Kim, Young Il;Nam, Jieun;Son, Yong;Kim, Taek-Soo;Lee, Bin
    • Journal of Powder Materials
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    • v.27 no.1
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    • pp.44-51
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    • 2020
  • Powder characteristics, such as density, size, shape, thermal properties, and surface area, are of significant importance in the powder bed fusion (PBF) process. The powder required is exclusive for an efficient PBF process. In this study, the particle size distribution suitable for the powder bed fusion process was derived by modeling the PBF product using simulation software (GeoDict). The modeling was carried out by layering sintered powder with a large particle size distribution, with 50 ㎛ being the largest particle size. The results of the simulation showed that the porosity decreased when the mean particle size of the powder was reduced or the standard deviation increased. The particle size distribution of prepared titanium powder by the atomization process was also studied. This study is expected to offer direction for studies related to powder production for additive manufacturing.

Hydrogneation and Electrochemical Characteristics of Gas-atomized Zr-based $AB_2$ Hydride for Ni-MH Secondary Battery (기체분무형 공정으로 제조된 Zr계 금속수소화물의 수소화반응 및 Ni-MH 2차전지 전극 특성에 관한 연구)

  • Kim, Jin-Ho;Hwang, Kwang-Taek;Kim, Byung-Kwan;Han, Jeong-Seb
    • Transactions of the Korean hydrogen and new energy society
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    • v.20 no.6
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    • pp.505-511
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    • 2009
  • The hydriding and electrochemical characteristics of Zr-based $AB_2$ alloy produced by gas atomization have been extensively examined. For the particle morphology of the as-cast and gas-atomized powders, it can be seen that the mechanically crushed powders are irregular, while the atomized powder particles are spherical. The increase of jet pressure of gas atomization process results in the decrease of hydrogen storage capacity and the slope of plateau pressure significantly increases. TEM and EDS studies showed the increase of jet pressure in the atomization process accelerated the phase separation within grain of the gas-atomized alloy, which brought about a poor hydrogenation property. However, the gas-atomized $AB_2$ alloy powders produced by jet pressure of 50 bar kept up the reversible $H_2$ storage capacity and discharge capacity similar to the mechanically crushed particles. In addition, the electrode of gas-atomized Zr-based $AB_2$ alloy of 50 bar showed improved cyclic stability over that of the cast and crushed particulate, which is attributed to the restriction of crack propagation by grain boundary and dislocation with ch/discharging cycling.

Filtration of dispersed nanoparticles using cyclone and ultrasonic atomization (초음파 무화 및 사이클론을 이용한 분산된 나노입자의 여과법)

  • Jung, Jihee;Kim, Moojoon;Kim, Jungsoon
    • The Journal of the Acoustical Society of Korea
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    • v.41 no.1
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    • pp.9-15
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    • 2022
  • In order to overcome the limitation of conventional nanoparticle dispersion methods such as sonicator or homogenizer, a filtration method using an ultrasonic atomization effect and cyclones was proposed in this study. A 0.5 wt% suspension was made with Al2O3 powder with an average diameter of 250 nm. The suspension was filtered by the proposed method after pre-dispersing using a sonicator and a homogenizer, respectively. As the result, in the case of the suspension after pre-dispersing with a sonicator, the particle size distribution of the filtered suspension started showing up a single normal distribution indicating the mode of the average diameter only after the 3rd cyclone process. On the other hand, in the case of the suspension with the homogenizer pre-dispersion, similar results appeared from the 2nd cyclone process. Filtration of various types of nanoparticles is expected to be possible by adjusting ultrasonic atomization frequency and manipulating the design of the cyclone.

Effect of Particle Size on Compactibility of Water-atomized Pure Iron Powder (수분사법으로 제조된 순철분말의 성형성에 미치는 분말크기의 영향)

  • Lee, Dong-Jun;Yoon, Eun-Yoo;Kim, Ha-Neul;Kang, Hee-Soo;Lee, Eon-Sik;Kim, Hyoung-Seop
    • Journal of Powder Materials
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    • v.18 no.3
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    • pp.221-225
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    • 2011
  • In the current study, the effects of particle size on compaction behavior of water-atomized pure iron powders are investigated. The iron powders are assorted into three groups depending on the particle size; 20-45 ${\mu}M$, 75-106 ${\mu}M$, and 150-180 ${\mu}M$ for the compaction experiments. The powder compaction procedures are processed with pressure of 200, 400, 600, and 800 MPa in a cylindrical die. After the compaction stage, the group having 150-180 ${\mu}M$ of particle size distribution shows the best densification behavior and reaches the highest green density. The reason for these results can be explained by the largest average grain size in the largest particle group, due to the low plastic deformation resistance in large grain sized materials.

Densification and Nanocrystallization of Water-Atomized Pure Iron Powder Using High Pressure Torsion (수분사법으로 제조된 순철 분말의 고압비틀림 성형 공정에 의한 치밀화 및 나노결정화)

  • Yoon, Eun-Yoo;Lee, Dong-Jun;Kim, Ha-Neul;Kang, Hee-Soo;Lee, Eon-Sik;Kim, Hyoung-Seop
    • Journal of Powder Materials
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    • v.18 no.5
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    • pp.411-416
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    • 2011
  • In this study, powder metallurgy and severe plastic deformation by high-pressure torsion (HPT) approaches were combined to achieve both full density and grain refinement at the same time. Water-atomized pure iron powders were consolidated to disc-shaped samples at room temperature using HPT of 10 GPa up to 3 turns. The resulting microstructural size decreases with increasing strain and reaches a steady-state with nanocrystalline (down to ~250 nm in average grain size) structure. The water-atomized iron powders were deformed plastically as well as fully densified, as high as 99% of relative density by high pressure, resulting in effective grain size refinements and enhanced microhardness values.

Effect of Critical Cooling Rate on the Formation of Intermetallic Phase During Rapid Solidification of FeNbHfBPC Alloy

  • Kim, Song-Yi;Oh, Hye-Ryeong;Lee, A-Young;Jang, Haneul;Lee, Seok-Jae;Kim, Hwi-Jun;Lee, Min-Ha
    • Journal of Korea Foundry Society
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    • v.41 no.3
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    • pp.235-240
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    • 2021
  • We present the effect of the critical cooling rate during rapid solidification on the nucleation of precipitates in an Fe75B13P5Nb2Hf1C4 (at.%) alloy. The thermophysical properties of the rapidly solidified Fe75B13P5Nb2Hf1C4 liquids, which were obtained at various cooling rates with various sizes of gas-atomized powder during a high-pressure inert gas-atomization process, were evaluated. The cooling rate of the small-particle powder (≤20 ㎛) was 8.4×105 K/s, which was 13.5 times faster than that of the large-particle powder (20 to 45 mm; 6.2×104 K/s) under an atomized temperature. A thermodynamic calculation model used to predict the nucleation of the precipitates was confirmed by the microstructural observation of MC-type carbide in the Fe75B13P5Nb2Hf1C4 alloy. The primary carbide phase was only formed in the large-particle gas-atomized powder obtained during solidification at a slow cooling rate compared to that of the small-particle powder.

Application of PM to the Consolidation of Metallic Glassy Powder and its Composites (분말야금공정을 이용한 비정질 및 복합체 합금 분말의 벌크화 거동)

  • Shin, Su-Min;Kim, Taek-Soo;Lee, Jin-Kyu;Song, Min-Seok;Kim, Jeong-Gon
    • Journal of Powder Materials
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    • v.14 no.6
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    • pp.348-353
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    • 2007
  • In the present study, Zr-base metallic glass (MG) and Zr-base BMG/diamond composites were fabricated using a combination of gas atomization and spark plasma sintering (SPS). The microstructure, thermal stability and mechanical property of both the specimens as atomized and sintered were investigated. The experimental results showed that the SPSed specimens could be densified into nearly 100% and maintained the initial thermal stability at the sintering temperature of 630K. In addition, MG/diamond powder composites were successfully synthesised using SPS process. The composites, even a very low diamond volume fraction, generated a significant increase in compressive strength. With increasing the diamond volume fraction, the compressive strength was also increased due to the addition of hardest diamonds. It suggests that these composites would be potential candidates for a new cutting tool material.