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首页> 外文期刊>Materials Science and Engineering >Effect of Nb-Ti multi-microalloying on the hydrogen trapping efficiency and hydrogen embrittlement susceptibility of hot-stamped boron steel
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Effect of Nb-Ti multi-microalloying on the hydrogen trapping efficiency and hydrogen embrittlement susceptibility of hot-stamped boron steel

机译:Nb-Ti多元微合金化对热冲压硼钢的捕氢效率和脆化氢的影响

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摘要

Multi-microalloying technique has been widely used to improve strength and ductility in steels, however, the effect of multi-microalloying on the hydrogen diffusion and hydrogen embrittlement (HE) behavior of steels is still not completely understood. This study evaluates the effect of Nb-Ti multi-microalloying on the hydrogen trapping efficiency and HE of hot-stamped steel by a combination of hydrogen permeation test, slow strain rate tensile (SSRT) test and quantitative analysis. The microstructural examination and hydrogen permeation tests showed that with increasing Nb + Ti content, more nano-sized (Nb, Ti) C precipitates were formed, and the martensite grain boundaries areas increased, thus increasing the irreversible and reversible hydrogen trap sites and decreasing the hydrogen diffusion coefficient in the hot-stamped steel. A quantitative analysis of the hydrogen traps demonstrated that the number of hydrogen traps induced by the (Nb, Ti) C precipitates was larger than that of the grain boundaries and dislocations in the Nb-Ti bearing steels. In addition, the SSRT tests showed that the HE susceptibility of the test steel decreased with increasing Nb + Ti content. This was because the additional hydrogen traps generated by the Nb-Ti addition hindered localized hydrogen accumulation at prior austenite grain boundaries, the cracking resistance was improved by a lower Σ3 boundary fraction, and the pinning role of the (Nb, Ti) C precipitates on the movable dislocation could inhibit H-dislocation interaction.
机译:多重微合金化技术已被广泛用于提高钢的强度和延展性,但是,多重微合金化对钢的氢扩散和氢脆性(HE)行为的影响仍然不完全清楚。本研究通过氢渗透试验,慢应变速率拉伸试验和定量分析相结合的方法,评估了Nb-Ti多元微合金化对热冲压钢的氢捕获效率和HE的影响。显微组织检查和氢渗透测试表明,随着Nb + Ti含量的增加,形成更多的纳米级(Nb,Ti)C沉淀,马氏体晶界面积增加,从而增加了不可逆和可逆的氢陷阱位点,并减少了氢在热冲压钢中的扩散系数。对氢陷阱的定量分析表明,由(Nb,Ti)C沉淀引起的氢陷阱的数量大于Nb-Ti轴承钢中晶界和位错的数量。另外,SSRT测试表明,随着Nb + Ti含量的增加,测试钢的HE敏感性降低。这是因为通过添加Nb-Ti产生的附加氢陷阱阻碍了氢在先前奥氏体晶界处的局部聚集,通过降低Σ3边界分数提高了抗裂性,并且(Nb,Ti)C的钉扎作用沉淀在活动位错可以抑制H位错相互作用。

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