• 제목/요약/키워드: WD-XRF

검색결과 13건 처리시간 0.015초

Mn-Co-Ni계 NTC 서미스터 제조 및 특성 (Preparation and characterization of Mn-Co-Ni NTC thermistor)

  • 이정일;김태완;신지영;류정호
    • 한국결정성장학회지
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    • 제25권2호
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    • pp.80-84
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    • 2015
  • 상온용 NTC 서미스터로는 주로 Mn-Co-Ni 산화물계가 주료 사용된다. 본 연구에서는 Mn-Co-Ni 산화물계 분말을 이용하여 상온에서 가압 성형하여 $900{\sim}1300^{\circ}C$ 온도범위에서 3시간 동안 소결하여 서미스터 소자를 제작하였다. 소결온도에 따른 서미스터 세라믹 샘플의 상변화, 소결밀도, 미세구조 및 원소함량비 변화를 고찰하였다. $1250^{\circ}C$에서 소결된 Mn-Co-Ni 서미스터 소자에 대하여 온도에 대한 저항특성을 측정하였으며, 측정되는 절대온도의 역수와 저항의 로그함수값에 대한 변화를 고찰하였다.

구리 합금을 위한 초고융점 원소의 용융산화물 확산 공정 (Diffusion of the High Melting Temperature Element from the Molten Oxides for Copper Alloys)

  • 송정호;노윤영;송오성
    • 한국재료학회지
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    • 제26권3호
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    • pp.130-135
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    • 2016
  • To alloy high melting point elements such as boron, ruthenium, and iridium with copper, heat treatment was performed using metal oxides of $B_2O_3$, $RuO_2$, and $IrO_2$ at the temperature of $1200^{\circ}C$ in vacuum for 30 minutes. The microstructure analysis of the alloyed sample was confirmed using an optical microscope and FE-SEM. Hardness and trace element analyses were performed using Vickers hardness and WD-XRF, respectively. Diffusion profile analysis was performed using D-SIMS. From the microstructure analysis results, crystal grains were found to have formed with sizes of 2.97 mm. For the copper alloys formed using metal oxides of $B_2O_3$, $RuO_2$, and $IrO_2$ the sizes of the crystal grains were 1.24, 1.77, and 2.23 mm, respectively, while these sizes were smaller than pure copper. From the Vickers hardness results, the hardness of the Ir-copper alloy was found to have increased by a maximum of 2.2 times compared to pure copper. From the trace element analysis, the copper alloy was fabricated with the expected composition. From the diffusion profile analysis results, it can be seen that 0.059 wt%, 0.030 wt%, and 0.114 wt% of B, Ru, and Ir, respectively, were alloyed in the copper, and it led to change the hardness. Therefore, we verified that alloying of high melting point elements is possible at the low temperature of $1200^{\circ}C$.

Microstructural Analysis of Slags using Raman Micro Spectroscope

  • Park, Su Kyoung;Kwon, In Cheol;Lee, Su Jeong;Huh, Il Kwon;Cho, Nam Chul
    • 보존과학회지
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    • 제35권2호
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    • pp.145-152
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    • 2019
  • The metal-manufacturing method and smelting temperature of ancient metal-production processes have been studied by analyzing the principal elements and microstructures of slag. However, the microstructure of slag varies according to the solidification cooling rate and types and relative amounts of various oxides contained within the smelting materials. Hence, there is a need for accurate analysis methods that allow slag to be distinguished by more than its composition or microstructure. In this study, the microstructures of slag discharged as a result of smelting iron sands collected from Pohang and Gyeongju, as well as the slag excavated from the Ungyo site in Wanju, were analyzed by using metalloscopy, scanning election microscopy-energy dispersine X-ray spectroscopy(SEM-EDS) and wavelength dispersive X-ray fluorenscence(WD-XRF). Furthermore, the microcrystals were accurately characterized by performing Raman micro-spectroscopy, which is a technique that can be used to identify the microcrystals of slags. SEM-EDS analysis of Pohang slag indicated that its white polygonal crystals could be Magnetite; however, Raman micro-spectroscopy revealed that these crystals were actually $ulv{\ddot{o}}spinel$. Raman micro-spectroscopy and SEM-EDS were also used to verify that the coarse white dendritic structures observed in the Gyeongju-slag were $W{\ddot{u}}stites$. Additionally, the Wanju slag was observed to have a glassy matrix, which was confirmed by Raman micro-spectroscopy to be Augite. Thus, we have demonstrated that Raman micro-spectroscopy can accurately identify slag microcrystals, which are otherwise difficult to distinguish as solely based on their chemical composition and crystal morphology. Therefore, we conclude that it has excellent potential as a slag analysis technique.