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变形高锰钢中的复杂结构效应

Complex Structural Effects in Deformed High-Manganese Steel.

作者信息

Kowalska Joanna, Ryś Janusz, Cempura Grzegorz

机构信息

Faculty of Metals Engineering and Industrial Computer Science, AGH University of Science and Technology, 30 Mickiewicz Avenue, 30-059 Krakow, Poland.

出版信息

Materials (Basel). 2021 Nov 16;14(22):6935. doi: 10.3390/ma14226935.

DOI:10.3390/ma14226935
PMID:34832336
原文链接:https://pmc.ncbi.nlm.nih.gov/articles/PMC8622089/
Abstract

The research presented in this paper is part of a larger project concerning deformation behavior, microstructure and mechanical properties of high-manganese steels with different chemical compositions and processed under various conditions. The current investigation deals with the development of microstructure and crystallographic texture of Fe-21.2Mn-2.73Al-2.99Si steel deformed in tension until fracture at ambient temperature. The deformation process of the examined steel turned out to be complex and included not only dislocation slip and twinning but also strain induced phase transformations (γ → ε) and (γ → α'). The formation of ε-martensite with hexagonal structure was observed within the microstructure of the steel starting from the range of lower strains. With increasing deformation degree, the α'-martensite showing a cubic structure gradually began to form. Attempts have been made to explain the circumstances or conditions for the occurrence of the deformation mechanisms mentioned above and their impact on the mechanical properties. The obtained results indicate that the strength and plastic properties of the steel substantially exceed those of plain carbon steels. Since both, mechanical twinning and the strain-induced phase transformations took place during deformation, it seems that both types of deformation mechanisms contributed to an increase in the mechanical properties of the examined manganese steel.

摘要

本文所呈现的研究是一个更大项目的一部分,该项目涉及不同化学成分且在各种条件下加工的高锰钢的变形行为、微观结构和力学性能。当前的研究涉及Fe-21.2Mn-2.73Al-2.99Si钢在室温下拉伸直至断裂过程中的微观结构发展和晶体织构。结果表明,所研究钢的变形过程很复杂,不仅包括位错滑移和孪生,还包括应变诱导相变(γ→ε)和(γ→α')。从较低应变范围开始,在钢的微观结构中观察到了具有六方结构的ε-马氏体的形成。随着变形程度的增加,具有立方结构的α'-马氏体逐渐开始形成。已尝试解释上述变形机制发生的情况或条件及其对力学性能的影响。所得结果表明,该钢的强度和塑性性能大大超过普通碳钢。由于在变形过程中同时发生了机械孪生和应变诱导相变,似乎这两种变形机制都有助于提高所研究的锰钢的力学性能。

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