硅酸盐学报
硅痠鹽學報
규산염학보
JOURNAL OF THE CHINESE CERAMIC SOCIETY
2007年
8期
939-947
,共9页
末松久幸%村井啓一%床井良德%鈴木常生%中山忠親%江偉華%新原晧一
末鬆久倖%村井啓一%床井良德%鈴木常生%中山忠親%江偉華%新原晧一
말송구행%촌정계일%상정량덕%령목상생%중산충친%강위화%신원호일
金属丝脉冲放电%脉冲能量%钝化金属纳米粉体%导电膏
金屬絲脈遲放電%脈遲能量%鈍化金屬納米粉體%導電膏
금속사맥충방전%맥충능량%둔화금속납미분체%도전고
pulsed wire discharge%pulsed power%passivated metal nanosized powders%conducting paste
综合介绍了脉冲电流通过细金属丝放电(pulsed wire discharge,PWD)制备纳米粉体的方法.讨论了影响纳米粉体,特别是晶粒尺寸的因素,以防止形成亚微米颗粒.因为达到电压峰值的丝的沉积能相当于丝的汽化能,因此,能夠计算出沉积能.随着所施加的能量增加,气体压力降低,介质气体的热扩散率增大,晶粒尺寸变小.在惰性气氛中,采用PWD工艺,由金属蒸气急冷可制备金属粉体.如果介质气体变为氧气或者氨气,就能制备氧化物、氮化物纳米粒子.要制备双金属合金、双氧化物或氮化物纳米粒子就必需采用双金属丝和不同的介质气体.采用PWD工艺,在有机气体或烟气中,能制备电磁屏蔽和导电浆料和其它用途的钝化纳米粒子.采用丝输送器而实现大量生产纳米粉体的PWD工艺一个实例证明了PWD工艺生产纳米粉体的可行性.
綜閤介紹瞭脈遲電流通過細金屬絲放電(pulsed wire discharge,PWD)製備納米粉體的方法.討論瞭影響納米粉體,特彆是晶粒呎吋的因素,以防止形成亞微米顆粒.因為達到電壓峰值的絲的沉積能相噹于絲的汽化能,因此,能夠計算齣沉積能.隨著所施加的能量增加,氣體壓力降低,介質氣體的熱擴散率增大,晶粒呎吋變小.在惰性氣氛中,採用PWD工藝,由金屬蒸氣急冷可製備金屬粉體.如果介質氣體變為氧氣或者氨氣,就能製備氧化物、氮化物納米粒子.要製備雙金屬閤金、雙氧化物或氮化物納米粒子就必需採用雙金屬絲和不同的介質氣體.採用PWD工藝,在有機氣體或煙氣中,能製備電磁屏蔽和導電漿料和其它用途的鈍化納米粒子.採用絲輸送器而實現大量生產納米粉體的PWD工藝一箇實例證明瞭PWD工藝生產納米粉體的可行性.
종합개소료맥충전류통과세금속사방전(pulsed wire discharge,PWD)제비납미분체적방법.토론료영향납미분체,특별시정립척촌적인소,이방지형성아미미과립.인위체도전압봉치적사적침적능상당우사적기화능,인차,능구계산출침적능.수착소시가적능량증가,기체압력강저,개질기체적열확산솔증대,정립척촌변소.재타성기분중,채용PWD공예,유금속증기급랭가제비금속분체.여과개질기체변위양기혹자안기,취능제비양화물、담화물납미입자.요제비쌍금속합금、쌍양화물혹담화물납미입자취필수채용쌍금속사화불동적개질기체.채용PWD공예,재유궤기체혹연기중,능제비전자병폐화도전장료화기타용도적둔화납미입자.채용사수송기이실현대량생산납미분체적PWD공예일개실예증명료PWD공예생산납미분체적가행성.
A method for preparing nanosized powders by the pulsed wire discharge (PWD) method utilizing a pulsed electric current going through a thin metal wire is described. Factors that affect the properties of the nanosized powders, in particular the grain sizes of nanosized powders, are discussed to prevent submicrometer grain formation. Since the energy deposited on a wire up to the voltage peak coincides with the energy for the evaporation of the wire, the wire was almost completely evaporated by the peak. With the increase of the charged energy, and the decrease of the gas pressure or increase of the thermal diffusivity of the ambient gas, the grain size decreases. The metal powder can be prepared by the cooling of metal vapor in the PWD process in inert gas. If the ambient gas is changed to oxygen or ammonia, oxide or nitride nanoparticles can be synthesized. For the preparation of binary alloys, double oxides or nitrides, it is necessary to use two different metals and different gases. By using the PWD method in the organic vapor/fume, pas-sivated nanoparticles for electromagnetic shields, conductive pastes and other applications can be prepared. The example of pulling a wire feeder for a large-scale production of nanosized powders by PWD shows the effectiveness of PWD for the preparation of passivated metal nanosized powders.