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先共析马氏体对超细贝氏体钢中贝氏体转变、微观组织及力学性能的影响

Influence of Prior Martensite on Bainite Transformation, Microstructures, and Mechanical Properties in Ultra-Fine Bainitic Steel.

作者信息

Guo Hui, Feng Xianying, Zhao Aimin, Li Qiang, Ma Jun

机构信息

Facility Horticulture Laboratory of Universities in Shandong, Weifang University of Science and Technology, Weifang 262700, China.

School of Mechanical Engineering, Shandong University, Jinan 250012, China.

出版信息

Materials (Basel). 2019 Feb 12;12(3):527. doi: 10.3390/ma12030527.

Abstract

A multiphase microstructure comprising of different volume fractions of prior martensite and ultra-fine bainite (bainitic ferrite and retained austenite) was obtained by quenching to certain temperatures, followed by isothermal bainitic transformation. The effect of the prior martensite transformation on the bainitic transformation behavior, microstructures, and mechanical properties were discussed. The results showed that the prior martensite accelerated the subsequent low-temperature bainite transformation, and the incubation period and completion time of the bainite reaction were significantly shortened. This phenomenon was attributed to the enhanced nucleation ratio caused by the introduced strain in austenite, due to the formation of prior martensite and a carbon partitioning between the prior martensite and retained austenite. Moreover, the prior martensite could influence the crystal growth direction of bainite ferrite, refine bainitic ferrite plates, and reduce the dimension of blocky retained austenite, all of which were responsible for improving the mechanical properties of the ultra-fine bainitic steel. When the content of the prior martensite reached 15%, the investigated steels had the best performance, which were 1800 MPa and 21% for the tensile strength and elongation, respectively. Unfortunately, the increased content of the prior martensite could lead to a worsening of the impact toughness.

摘要

通过淬火至特定温度,随后进行等温贝氏体转变,获得了一种由不同体积分数的先共析马氏体和超细贝氏体(贝氏体铁素体和残余奥氏体)组成的多相微观组织。讨论了先共析马氏体转变对贝氏体转变行为、微观组织和力学性能的影响。结果表明,先共析马氏体加速了随后的低温贝氏体转变,贝氏体反应的孕育期和完成时间显著缩短。这种现象归因于由于先共析马氏体的形成以及先共析马氏体与残余奥氏体之间的碳分配,在奥氏体中引入应变导致形核率提高。此外,先共析马氏体可以影响贝氏体铁素体的晶体生长方向,细化贝氏体铁素体板条,并减小块状残余奥氏体的尺寸,所有这些都有助于提高超细贝氏体钢的力学性能。当先共析马氏体含量达到15%时,所研究的钢具有最佳性能,其抗拉强度和伸长率分别为1800 MPa和21%。不幸的是,先共析马氏体含量的增加会导致冲击韧性变差。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/0c76/6385105/9a7d8744e3a2/materials-12-00527-g001.jpg

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