• Title/Summary/Keyword: Tungsten-alloys

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Synthesis of Tungsten Heavy alloy Nanocomposite Powder by Ultrasonic-milling Process (초음파 밀링 공정을 이용한 텅스텐 중합금 나노복합분말의 제조)

  • Lee, Seung-Chul;Lee, Chang-Woo;Jung, Sung-Soo;Cha, Berm-Ha;Lee, Jai-Sung
    • Journal of Powder Materials
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    • v.14 no.2 s.61
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    • pp.101-107
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    • 2007
  • Ultrasonic-milling of metal oxide nanopowders for the preparation of tungsten heavy alloys was investigated. Milling time was selected as a major process variable. XRD results of metal oxide nanopowders ultrasonic-milled for 50 h and 100 h showed that agglomerate size reduced with increasing milling time and there was no evidence of contamination or change of composition by impurities. It was found that nanocomposite powders reduced at $800^{\circ}C$ in a hydrogen atmosphere showed a chemical composition of 93.1W-4.9Ni-2.0Fe from EDS analysis. Hardness of sintered part using 50 h and 100 h powder samples was 399 Hv and 463 Hv, respectively, which is higher than the that of commercial products (330-340 Hv).

Sintering Behavior and Microstructures of Tantalum and Tantalum-Tungsten Alloys Powders (탄탈륨 및 탄탈륨-텅스텐 합금 분말의 소결성 및 미세조직 연구)

  • Kim, Youngmoo;Yang, Sung Ho;Lee, Seong;Lee, Sung Ho;Noh, Joon-Woong
    • Journal of Powder Materials
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    • v.27 no.5
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    • pp.373-380
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    • 2020
  • The purpose of this study is to investigate the densification behavior and the corresponding microstructural evolution of tantalum and tantalum-tungsten alloy powders for explosively formed liners. The inherent inhomogeneous microstructures of tantalum manufactured by an ingot metallurgy might degrade the capability of the warhead. Therefore, to overcome such drawbacks, powder metallurgy was incorporated into the near-net shape process in this study. Spark plasma-sintered tantalum and its alloys with finer particle sizes exhibited higher densities and lower grain sizes. However, they were contaminated from the graphite mold during sintering. Higher compaction pressures in die and isostatic compaction techniques also enhanced the sinterability of the tantalum powders; however, a full densification could not be achieved. On the other hand, the powders exhibited full densification after being subjected to hot isostatic pressing over two times. Consequently, it was found that the hot isostatic-pressed tantalum might exhibit a lower grain size and a higher density as compared to those obtained in previous studies.

Multi-step Internal Nitriding of Tungsten-titanium Alloys

  • Nagae, Masahiro;Yoshio, Tetsuo;Takada, Jun;Hiraoka, Yutaka;Takida, Tomohiro
    • Proceedings of the Korean Powder Metallurgy Institute Conference
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    • 2006.09b
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    • pp.1157-1158
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    • 2006
  • Internally nitrided dilute W-Ti alloy specimens having a heavily deformed surface microstructure were prepared by a multi-step internal nitriding at 1573-2073 K. Primary nitriding below their recrystallization temperature induced a precipitation of ultrafine TiN particles. After secondary and tertiary nitriding, those precipitates grew into rod-like TiN with a length of 20-60 nm. The recrystallization temperature after nitriding was elevated above 2073 K. The yield strength at 1773 K obtained from nitrided W-0.5 mass% Ti alloy was about 5 times as large as that of the recrystallized specimen. DBTT of the nitrided alloys was about 373 K.

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Tungsten-Titanium Powder Compaction by Impulsive Loading (I) (W-Ti 분말 압축 (I))

  • Dal Sun Kim;S.Nemat-Nasser
    • Explosives and Blasting
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    • v.19 no.1
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    • pp.101-110
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    • 2001
  • Depleted uranium (DU) outperforms tungsten heavy alloys (WHA) by about 10%. Because of environmental and hence, political concerns, there is a need to improve WHA performance, in order to replace the DU penetrators. A technique of metal powder compaction by the detonation of an explosive has been applied to tungsten-titanium(W-Ti) powder materials that otherwise may be difficult to fabricate conventionally or have dissimilar, nonequilibrium, or unique me1astab1e substructures. However, the engineering properties of compacted materials are not widely reported and are little known especially for the "unique" composition of W-Ti alloy. To develop high-performance tungsten composites with superior ballistic attributes, it is necessary to understand, carefully document controlled experimental results, and develop basic computational models for potential composites with controlled microstructures. A detailed understanding and engineering application of W-Ti alloy can lead to the development of new structural design for engineering components and materials.

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