论文

0.02%Nb空冷仿晶界型铁素体/粒状贝氏体复相钢的相变及强韧性

  • 冯春 ,
  • 方鸿生 ,
  • 白秉哲 ,
  • 郑燕康
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  • 清华大学材料科学与工程系先进材料教育部重点实验室; 北京 100084
冯春, 男, 1980年生, 博士生

收稿日期: 2009-09-24

  修回日期: 2010-01-27

  网络出版日期: 2010-04-11

基金资助

国家重点基础研究发展计划资助项目 2004CB619105

PHASE TRANSFORMATION AND STRENGTH–TOUGHNESS OF A FGBA/BG DIPHASE STEEL CONTAINING 0.02%Nb

  • FENG Chun ,
  • FANG Hong-Sheng ,
  • BO Bing-Zhe ,
  • ZHENG Yan-Kang
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  • Key Laboratory of Advanced Materials of Ministry of Education; Department of Material Science and Engineering; Tsinghua University; Beijing 100084

Received date: 2009-09-24

  Revised date: 2010-01-27

  Online published: 2010-04-11

Supported by

Supported by National Basic Research Program of China (No.2004CB619105)

摘要

采用Gleeble-1500D热模拟机进行热模拟实验和轧制实验,研究了添加0.02%Nb对仿晶界型铁素体(FGBA)/粒状贝氏体(BG)复相空冷钢相变及力学性能的影响. 结果表明, 0.02%Nb使该钢的连续冷却转变曲线右移, 淬透性增加; 0.02%Nb抑制了γ→α相变, 细化了仿晶界铁素体, 促进了粒状贝氏体转变,细化了粒状贝氏体及其内部的铁素体片条及马氏体-奥氏体(M-A)岛. 与不含Nb的FGBA/BG复相钢相比, 由于组织细化及强化相体积分数的提高,含0.02%Nb的复相钢经轧后空冷后抗拉强度上升了157 MPa, 屈服强度增加了93 MPa, 强化效果显著. 分析了添加0.02%Nb使复相钢的组织细化及强化相体积分数增加的原因.

本文引用格式

冯春 , 方鸿生 , 白秉哲 , 郑燕康 . 0.02%Nb空冷仿晶界型铁素体/粒状贝氏体复相钢的相变及强韧性[J]. 金属学报, 2010 , 46(4) : 473 -478 . DOI: 10.3724/SP.J.1037.2009.00646

Abstract

In order to produce Mn–series low carbon steels using alloying elements with low cost and following the conventional production line without controlled cooling facilities and not needing special heat–treatment, Mn–series low carbon air cooling grain boundary allotriomorphic ferrite (FGBA)/granular bainite (BG) steels, alloying with Si–Mn–Cr, have been developed. The effect of 0.02%Nb on the phase transformation and strength–toughness of a FGBA/BG steel have been investigated by using Gleeble–1500D machine and hot rolling test in this paper. Two specimens with and without Nb addition were deformed by 21% at 850  and then air cooling to room temperature. For Nb free steel, the average size of FGBA is 25 μm in length and 10 μm in width. The average size of intragranular ferrite is about 6—8 μm. For FGBA/BG steel with 0.02%Nb, the average size of FGBA is 10 μm in lengtand 4 μm in width. The average size of intragranular ferrite is less than 4 μm. Compared with Nb free steel, the size of bainitic ferrite and martensite/austenite (M–A) island decease and their corresponding volume fractions increase in the FGBA/BG steel with 0.02%Nb. The experimental results indicate that the addition of 0.02%Nb increases the hardenability of the FGBA/BG steel, suppresses the transformation of  γ→α, refines the size of grain boundary allotriomorphic ferrite, promotes the granular bainitic transformation, lowers the bainitic start temperature (Bs), and refines the granular bainite including its bainitic ferrite and M–A islands. It is suggested that the effects of structure refinement and increase of strengtening phases improve the strength of the FGBA/BG steel with 0.02%Nb. Compared wih ypicaNb ree FGBA/BG steel after hot rolling and air cooling, it is found that the tensile strengtand yielstrength of the FGBA/BG steel wit0.02Nb% rise to 157 MPa and 97 MPa respectively. Moreover, some possible reasons of structure refinement and increase of stregthening phases induced by 0.02%Nb addition have been disscussed in this paper.

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