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通过金属颗粒增强推进下一代高性能金属基复合材料。

Advancing the next generation of high-performance metal matrix composites through metal particle reinforcement.

作者信息

Alem Sayed Ali Ahmad, Sabzvand Mohammad Hossein, Govahi Parnian, Poormehrabi Pooria, Hasanzadeh Azar Mahdi, Salehi Siouki Sara, Rashidi Reza, Angizi Shayan, Bagherifard Sara

机构信息

Department of Chemistry, Materials and Chemical Engineering "Giulio Natta" (DCMC), Politecnico Di Milano, Milan, Italy.

Department of Polymer Engineering and Science, Montanuniversitaet Leoben, Leoben, Austria.

出版信息

Adv Compos Hybrid Mater. 2025;8(1):3. doi: 10.1007/s42114-024-01057-4. Epub 2024 Nov 27.

Abstract

Metal matrix composites (MMCs) offer asignificant boost to achieve a wide range of advanced mechanical properties and improved performance for a variety of demanding applications. The addition of metal particles as reinforcement in MMCs is an exciting alternative to conventional ceramic reinforcements, which suffer from numerous shortcomings. Over the last two decades, various categories of metal particles, i.e., intermetallics, bulk metallic glasses, high-entropy alloys, and shape memory alloys, have become popular as reinforcement choices for MMCs. These groups of metal particles offer a combination of outstanding physico-mechanical properties leading to unprecedented performances; moreover, they are significantly more compatible with the metal matrices compared to traditional ceramic reinforcements. In this review paper, the recent developments in MMCs are investigated. The importance of understanding the active mechanisms at the interface of the matrix and the reinforcement is highlighted. Moreover, the processing techniques required to manufacture high-performance MMCs are explored identifying the potential structural and functional applications. Finally, the potential advantages and current challenges associated with the use of each reinforcement category and the future developments are critically discussed. Based on the reported results, the use of metal particles as reinforcement in MMCs offers a promising avenue for the development of advanced materials with novel mechanical properties. Further progress requires more in-depth fundamental research to realize the active reinforcing mechanisms at the atomic level to precisely identify, understand, and tailor the properties of the integrated composite materials.

摘要

金属基复合材料(MMCs)能显著提升性能,以实现广泛的先进机械性能,并为各种苛刻应用改善其性能。在MMCs中添加金属颗粒作为增强体,是传统陶瓷增强体的一个令人兴奋的替代方案,因为传统陶瓷增强体存在诸多缺点。在过去二十年中,各类金属颗粒,即金属间化合物、块状金属玻璃、高熵合金和形状记忆合金,已成为MMCs增强体的热门选择。这些金属颗粒组具有出色的物理机械性能组合,可带来前所未有的性能;此外,与传统陶瓷增强体相比,它们与金属基体的相容性显著更高。在这篇综述论文中,研究了MMCs的最新进展。强调了理解基体与增强体界面处活性机制的重要性。此外,探索了制造高性能MMCs所需的加工技术,确定了潜在的结构和功能应用。最后,对使用每种增强体类别相关的潜在优势和当前挑战以及未来发展进行了批判性讨论。基于所报道的结果,在MMCs中使用金属颗粒作为增强体为开发具有新颖机械性能的先进材料提供了一条有前景的途径。进一步的进展需要更深入的基础研究,以在原子水平上实现活性增强机制,从而精确识别、理解和调整集成复合材料的性能。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/d900/11602867/c5cee2afcb90/42114_2024_1057_Fig1_HTML.jpg

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