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Processing of advanced materials using high-energy mechanical milling

机译:使用高能机械铣削加工先进材料

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This paper provides an overview of the research on the use of high-energy mechanical milling in processing advanced materials. The focus is on the major understanding achieved on each of the major topics in this area. This overview demonstrates that high-energy mechanical milling can be used to produce several different types of materials, including amorphous alloy powders, nanocrystalline powders, intermetallic powders, composite and nanocomposite powders, and nanopowders. Good understanding of the mechanisms related to the process for each of these purposes has been achieved at the phenomenological level. However, accurate quantification and modelling of high-energy mechanical milling is still not available, even though several research groups have investigated these topics. The whole area of mathematically describing and modelling the high energy milling process deserves the close attention of all materials scientists and engineers working in the area of processing powder materials using high-energy mechanical milling. Without mastering the art of optimising, controlling and predicting the process, there is no hope of developing this powerful process into a mainstream industrial scale materials processing process as has happened for metallurgical processes, such as melting, casting, or heat treatment. Issues related to the consolidation of the mechanically milled powders and future development in this area of high-energy mechanical milling have also been commented on.
机译:本文概述了在加工高级材料中使用高能机械铣削的研究。重点是对该领域每个主要主题的主要理解。此概述表明,高能机械研磨可用于生产几种不同类型的材料,包括非晶态合金粉末,纳米晶体粉末,金属间粉末,复合和纳米复合粉末以及纳米粉末。在现象学层面已经很好地理解了与这些目的相关的与过程相关的机制。但是,尽管有几个研究小组对这些问题进行了研究,但仍无法对高能机械铣削进行精确的量化和建模。在数学上描述和建模高能铣削过程的整个领域都值得从事高能机械铣削粉末材料加工领域的所有材料科学家和工程师的密切关注。如果不掌握优化,控制和预测工艺的技术,就不可能像冶金工艺(如熔融,铸造或热处理)一样,将这种强大的工艺发展成为主流的工业规模材料加工工艺。还评论了与机械研磨粉末的固结和高能机械研磨领域的未来发展有关的问题。

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