• Title/Summary/Keyword: electrical explosion of wires

Search Result 20, Processing Time 0.025 seconds

Ag-Cu Powders Prepared by Electrical Wire Explosion of Cu-plated Ag Wires (동도금한 은선재의 전기선폭발에 의해 제조한 Ag-Cu분말)

  • Kim, Won-Baek;Park, Je-Shin;Suh, Chang-Youl
    • Journal of Powder Materials
    • /
    • v.14 no.5
    • /
    • pp.320-326
    • /
    • 2007
  • Ag-Cu alloy nano powders were fabricated by the electrical explosion of Cu-plated Ag wires. Ag wires of 0.2mm diameter was electroplated to final diameter of 0.220 mm and 0.307 mm which correspond to Ag-27Cu and Ag-68Cu alloy. The explosion product consisted of equilibrium phases of ${\alpha}-Ag$ and ${\beta}$-Cu. The particle size of Ag-Cu nano powders were 44 nm and 70 nm for 0.220 mm and 0.307 mm wires, respectively. The Ag-Cu nano powders contained less Cu than average value due to higher sublimation energy compared to that of Ag. As a result, micron-sized spherical particles formed from liquid droplets contained higher Cu content.

Preparation of the Metallic Nanopowders by Wire Explosion in Liquid Media (액중 전기폭발에 의한 금속 나노분말 제조)

  • Cho, Chu-Hyun;Kim, Byung-Geol;Park, Sang-Ha;Kang, Chung-Il;Lee, Hong-Sik;Im, Geun-Hie
    • The Transactions of the Korean Institute of Electrical Engineers C
    • /
    • v.55 no.9
    • /
    • pp.452-455
    • /
    • 2006
  • The technology of wire explosion have been used to product nanopowders. A new concept was proposed to produce metallic nanosized powders, which is wire explosion in liquid media. We have exploded the Ag or Cu wires of diameter of O.3mm, 40mm long, in the de-ionized water or acetone, respectively. Electrical energy of 1.1kJ was stored in 10uF capacitor and released to the wires through a triggered spark gap switch. The process was observed by high-speed camera. Those images showed that the powders were generated by vapor condensation in the shell formed by shock wave in the water. The particles were directly dispersed into the water with collapse of the shell. The sizes of Ag and Cu nanopowders were evaluated to 35nm and 17nm, respectively.

Effect of Electrical Parameters and Surrounding Gas on the Electroexplosive Tungsten Nanopowders Characteristics

  • Kwon, Young-Soon;Kim, Jin-Chun;Ilyin, Alexander P.;Nazarenko, Olga B.;Tikhonov, Dmitry V.
    • Journal of Powder Materials
    • /
    • v.19 no.1
    • /
    • pp.49-54
    • /
    • 2012
  • Tungsten nanopowders were produced by the method of wires electrical explosion in the different gases. The study of phase and dispersed composition of the powders was carried out. The influence of electrical parameters such as the value of energy input in wire and the arc stage of the explosion was discussed. The factors that make for decreasing the particles size are the lower pressure of surrounding gas and the use of addition of chemically reactive gas.

Electroexplosive Technology of Nanopowders Production: Current Status and Future Prospects

  • Kwon, Young-Soon;Kim, Jin-Chun;Ilyin, Alexander P.;Nazarenko, Olga B.;Tikhonov, Dmitry V.
    • Journal of Powder Materials
    • /
    • v.19 no.1
    • /
    • pp.40-48
    • /
    • 2012
  • The current situation of the nanopowders production technology based on the process of electrical explosion of wires is described. The advantages and disadvantages of the electroexplosive technology are indicated. The results of studies characterizing the effect of the electrical explosion conditions on the nanopowders properties are presented, including latest results: conditions of nanopowders passivation, conditions of nanopowders production having narrow size distribution, the methods of nanopowders diagnostic and standartization. In addition, the application and area of future research on this technology are proposed.

Fabrication of Cu-Zn Alloy Nano Powders by Wire Explosion of Electrodeposited Wires (도금선재의 전기선폭발을 이용한 Cu-Zn 합금 나노분말 제조)

  • Kim, Won-Baek;Park, Je-Shin;Suh, Chang-Yeul;Lee, Jae-Chun;Oh, Yong-Jun;Mun, Jeong-Il
    • Journal of Powder Materials
    • /
    • v.14 no.1 s.60
    • /
    • pp.38-43
    • /
    • 2007
  • Cu-Zn alloy nano powders were fabricated by the electrical explosion of Zn-electroplated Cu wire along with commercial brass wire. The powders exploded from brass wire were composed mainly of ${\alpha},{\beta},\;and\;{\gamma}$ phases while those from electroplated wires contained additional Zn-rich phases as ${\varepsilon}$, and Zn. In case of Zn-elec-troplated Cu wire, the mixing time of the two components during explosion might not be long enough to solidify as the phases of lower Zn content. This along with the high vapor pressure of Zn appears to be the reason for the observed shift of explosion products towards the high-Zn phases in electroplated wire system.

Phase Transformation by the Oxidation of Air-passivated W and Mo Nanopowders Produced by an Electrical Explosion of Wires

  • Kwon, Young-Soon;Kim, Ji-Soon;A. Gromov, Alexander;Hong, Moon-Hee
    • Journal of Powder Materials
    • /
    • v.11 no.2
    • /
    • pp.130-136
    • /
    • 2004
  • The passivation and oxidation process of tungsten and molybdenum narlopowders, produced by electrical explosion of wires was studied by means of FE-SEM, XPS. XRD, TEM, DIA-TGA and sire distribution analysis. In addition, the phase transformation of W and Mo nanopowders under oxidation in air was investigated. A chemical process is suggested for the oxidation of W and Mo nano-particles after a comprehensive testing of passivated and oxidized powders.

Fabrication of Core-Shell Structured Ni-Based Alloy Nanopowder by Electrical Wire Explosion Method

  • Lee, A-Young;Lee, Gwang-Yeob;Oh, Hye-Ryeong;Kim, Hyeon-Ah;Kim, Song-Yi;Lee, Min-Ha
    • Journal of Powder Materials
    • /
    • v.23 no.6
    • /
    • pp.409-413
    • /
    • 2016
  • Electrical wire explosion in liquid media is a promising method for producing metallic nanopowders. It is possible to obtain high-purity metallic nanoparticles and uniform-sized nanopowder with excellent dispersion stability using this electrical wire explosion method. In this study, Ni-Fe alloy nanopowders with core-shell structures are fabricated via the electrical explosion of Ni-Fe alloy wires 0.1 mm in diameter and 20 mm in length in de-ionized water. The size and shape of the powders are investigated by field-emission scanning electron microscopy, transmission electron microscopy, and laser particle size analysis. Phase analysis and grain size determination are conducted by X-ray diffraction. The result indicate that a core-shell structured Ni-Fe nanopowder is synthesized with an average particle size of approximately 28 nm, and nanosized Ni core particles are encapsulated by an Fe nanolayer.

Morphology, Phase Contents, and Chemical Composition of Nanopowders Produced by the Electrical Explosion of Tin-Lead Alloy Wires

  • Kwon, Young-Soon;P. Ilyin, Alexander;V. Tichonov, Dmitrii
    • Journal of Powder Materials
    • /
    • v.10 no.3
    • /
    • pp.157-160
    • /
    • 2003
  • Phase contents and elemental composition of ultradispersed powders obtained by the electrical explosion of tin-leadalloy powders are investigated. It is demonstrated that during the explosion and subsequent cooling, surface layers of powder particles are enriched in lead compared to the initial alloy. The thermal stability of powders oxidizing in air is also investigated.

Cu-Ni-P Alloy Nano Powders Prepared by Electrical Wire Explosion (전기선폭발법에 의한 Cu-Ni-P 합금 나노 분말 제조)

  • Kim, Won-Baek;Park, Je-Shin;Suh, Chang-Youl;Lee, Jae-Chun;Kim, Jung-Hwan;Oh, Yong-Jun
    • Journal of Powder Materials
    • /
    • v.14 no.2 s.61
    • /
    • pp.108-115
    • /
    • 2007
  • Cu-Ni-P alloy nano powders were fabricated by the electrical explosion of electroless Ni plated Cu wires. The effect of applied voltage on the explosion was examined by applying pulse voltage of 6 and 28 kV, The estimated overheating factor, K, were 1.3 for 6 kV and 2.2 for 28 kV. The powders produced with pulse voltage of 6 kV were composed of Cu-rich solid solution, Ni-rich solid solution, and $Ni_3P$ phase. While, those produced with 28 kV were complete Cu-Ni-P solid solution and small amount of $Ni_3P$ phase. The initial P content of 6.5 at.% was reduced to 2-3 at.% during explosion due to its high vapour pressure.

The Fabrication of Al-Cu Alloy Nano Powders by a New Method Combining Electrodeposition and Electrical Wire Explosion (전기도금법과 전기선폭발법을 이용한 Al-Cu 합금 나노분말제조)

  • Park Je-Shin;Suh Chang-Youl;Chang Han-Kwon;Lee Jae-Chun;Kim Won-Baek
    • Journal of Powder Materials
    • /
    • v.13 no.3 s.56
    • /
    • pp.187-191
    • /
    • 2006
  • Al-Cu alloy nano powders were produced by the electrical explosion of Cu-plated Al wires. The composition and phase of the alloy could be controlled by varying the thickness of Cu deposit on Al wire. When the Cu layer was thin, Al solid solution and $CuAl_2$ were the major phases. As the Cu layer becomes thicker, Al diminished while $Al_4Cu_9$ phase prevailed instead. The average particle size of Al-Cu nano powders became slightly smaller from 63 nm to 44 nm as Cu layer becomes thicker. The oxygen content of Al-Cu powder decreased linearly with Cu content. It is well demonstrated that the electrodeposition combined with wire explosion could be simple and economical means to prepare variety of alloy and intermetallic nano powders.