• 采用反应球磨技术在高温下可以形成粒度很小,甚至达到纳米金属间化合物粉末

    The particle size of the powder from solid-liquid reaction milling is fine, even though reaches to nanoscale.

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  • 几种机理从不同的角度说明高能球磨中,粉末颗粒之间相互作用发生的反应方式的复杂性

    At the same time, these mechanisms showed the complexity about powders interaction in the high energy ball-milling.

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  • 利用阿伦尼乌斯公式分析磁铁矿原料辊前后团氧化反应活化能

    The activation energy of magnetite materials of pellet which were pretreated with and without high pressure grinding is studied using Arrhennius Law in this paper.

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  • 在本实验条件下,反应触发时间24小时24.5小时之间。

    The time of starting reaction is 24 to 24.5 hours of milling.

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  • 反应机理进行了探讨。

    Mechanism of Reactive Ball Milling was discussed.

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  • 球磨法制得炭黑苯胺研究了接枝聚合反应影响因素

    Graft reactions of carbon black in presence of an were investigated and effects of experimental factors on graft reaction were discussed.

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  • 加速反应进行可以在金属液体中加成分相同的金属粉末。

    To accelerate the reaction, some element powders with the same composition as the milling medium can also be added.

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  • 通过对比反应产物,发现处理控制纳米管生成必要步骤,这可以归结球磨处理反应微粒尺寸影响

    By comparing the as-synthesized samples, we can discover that ball-milling treatment is necessary to the formation of nanotubes owing to its effect on the dimension.

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  • 表明一般条件下难以进行固态还原反应,在高能可以发生

    The results indicated that the solid state reduction reactions which may not be realized under usual conditions can be carried out through high energy ball milling.

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  • 将上述组份经过称量、混合煅烧粉碎造粒成型烧结等固相反应工序烧制成微波介质陶瓷。

    It is prepared through mixing the materials, ball milling, calcining, crushing, pelletizing, forming, sintering and other steps.

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  • 将上述组份经过称量、混合煅烧粉碎造粒成型烧结等固相反应工序烧制成微波介质陶瓷。

    It is prepared through mixing the materials, ball milling, calcining, crushing, pelletizing, forming, sintering and other steps.

    youdao

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