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首页> 外文期刊>Materials Science and Engineering >Effect of intercritical rolling temperature on microstructure-mechanical property relationship in a medium Mn-TRIP steel containing 8 ferrite
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Effect of intercritical rolling temperature on microstructure-mechanical property relationship in a medium Mn-TRIP steel containing 8 ferrite

机译:临界轧制温度对含8铁素体的Mn-TRIP中等钢组织性能的影响

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摘要

We elucidate the influence of intercritical rolling temperature on the microstructural evolution, mechanical properties and work-hardening behavior of a hot-rolled Fe-0.2C-6.5Mn-3Al-0.1V medium Mn transformation-induced-plasticity (TRIP) steel containing δ-ferrite. Tensile strength of 966 MPa, total elongation of 42.6% and yield strength of 705 MPa was obtained in the annealed steel subjected to a low intercritical rolling temperature. Rolling at a high intercritical rolling temperature promoted the partitioning of Mn from δ ferrite to prior austenite grains, and led to a martensitic matrix characterized by a fine lath structure. Subsequently, after intercritical annealing, the reversed austenite transformed from the martensitic matrix had high stability and small size. However, the reversed austenite with a high degree of Mn enrichment, fine lath structure and high stability provided a slow and less active TRIP effect. This was responsible for low work-hardening rate during deformation. In contrast, the high content of reversed austenite in the annealed steel subjected to low intercritical rolling temperature had relatively low stability and large lath width, exhibited serrated work-hardening behavior indicative of discontinuous TRIP effect. Additionally, the low intercritical rolling temperature led to a high density of dislocations in δ-ferrite, which effectively promoted VC precipitation after intercritical annealing, and enhanced yield strength. Furthermore, the formation of high angle boundary in δ-ferrite and the formation of pro-eutectoid ferrite at low intercritical rolling temperature also enhanced yield strength through grain boundary strengthening.
机译:我们阐明了临界轧制温度对含δ的热轧Fe-0.2C-6.5Mn-3Al-0.1V中锰转变诱导塑性(TRIP)钢的组织演变,力学性能和加工硬化行为的影响铁氧体。在低临界轧制温度下进行退火的退火钢的抗拉强度为966 MPa,总伸长率为42.6%,屈服强度为705 MPa。在高临界轧制温度下的轧制促进了Mn从δ铁素体向早期奥氏体晶粒的分配,并导致了以细板条结构为特征的马氏体基体。随后,在临界退火之后,从马氏体基体转变的反向奥氏体具有高稳定性和小尺寸。然而,具有高锰富集度,细板条结构和高稳定性的反向奥氏体提供了缓慢且不太活跃的TRIP效应。这是造成变形时加工硬化率低的原因。相反,在低临界温度下进行退火的退火钢中的高含量奥氏体具有相对较低的稳定性和较大的板条宽度,表现出锯齿状的加工硬化行为,表明不连续的TRIP效应。另外,低的临界轧制温度导致δ-铁素体中的位错密度高,这有效地促进了临界退火后的VC析出,并提高了屈服强度。此外,在较低的临界轧制温度下,δ-铁素体中高角度边界的形成和共析铁素体的形成也通过晶界强化而提高了屈服强度。

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