论文标题

碳在严重塑性变形金属中的影响

Effect of Carbon in Severe Plastically Deformed Metals

论文作者

Bachmaier, Andrea, Pippan, Reinhard, Renk, Oliver

论文摘要

在过去的几十年中,严重的塑性变形技术已经越来越多,因为它们允许具有优质的机械和功能性能的散装纳米结构材料。但是,由于机械诱导的晶界迁移,可实现的晶粒尺寸还原不是不确定的,而是一旦应用了足够的应变,就会停滞不前。因此,添加溶质元素或第二相颗粒提供了访问真正的纳米晶体状态的可能性。由于它们的溶解度低和迁移率很高,因此间隙元素在减少边界迁移方面非常有效。此处总结了碳对晶粒细化的影响以及所得的机械性能。由于碳不仅可以作为石墨添加,而且可以以其他形式或同素异形物(例如纳米管,纳米木梁或碳化物)引入碳,因此与之相关的各自的优势和问题是讨论的中心。独立于所使用的策略,可以获得其他合金元素几乎无法达到的强度水平。此外,尽管碳对晶界内聚力没有负面影响,尽管强度水平较大,甚至可以广泛维护韧性和韧性。

In the last decades severe plastic deformation techniques have gained increasing interest as they allow the production of bulk nanostructured materials with superior mechanical and functional properties. However, because of mechanically induced grain boundary migration, the achievable grain size reduction is not indefinite but tends to stagnate once sufficient strain has been applied. Consequently, addition of solute elements or second phase particles offers the possibility to access the true nanocrystalline regime. Due to their low solubility and high mobility, interstitial elements are extremely effective at subduing boundary migration. Herein the effect of carbon on grain refinement and the resulting mechanical properties are summarized. As carbon may not only be added as graphite but could also be introduced in other forms or as allotropes such as nanotubes, nanodiamonds, or carbides, the respective advantages and problems associated with it are the center of discussion. Independent of the strategy used, strength levels hardly achievable with other alloying elements can be obtained. Moreover, as carbon does not have a negative effect on grain boundary cohesion, despite the enormous strength levels even ductility and toughness can be widely maintained.

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