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Effects of Matrix Microstructure on the Nanoscale Precipitation and Precipitation Strengthening in an Ultra-high Strength Steel

机译:基质微观结构对超高强度钢纳米级沉淀和沉淀强化的影响

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Matrix microstructure and nanoscale clusters are the two main factors influencing the mechanical properties of nanocluster strengthened steels. Here, an ultra-high strength steel with a tensile strength of ~1.64 GPa and an elongation of ~14% has been developed through a combination of fine matrix microstructure and precipitation strengthening. Matrix microstructure was primarily controlled by annealing treatment. After annealing treatment at 750°C for 1 h, the hot-rolled microstructure changes to the layered sorbite-like structure. The precipitation strengthening contributes a similar yield strength of ~494 MPa in both hot-rolled and annealed steels. The results indicate that there is no effect of matrix microstructure on the subsequent precipitation of nanoscale clusters and precipitation strengthening. The matrix microstructure and the precipitation of nanoscale clusters are independent and can be controlled separately.
机译:基质微观结构和纳米级集群是影响纳米光泽强化钢机械性能的两个主要因素。这里,通过细胞基质微观结构和沉淀强化的组合,开发了一种具有〜1.64GPa的抗拉强度和〜14%伸长率的超高强度钢。基质微观结构主要通过退火处理来控制。在750℃下进行退火处理1小时后,热轧的微观结构变为层状岩体状结构。沉淀强化在热轧和退火钢中有助于〜494MPa的相似屈服强度。结果表明,基质微观结构对纳米级簇的随后沉淀和沉淀强化没有影响。纳米微结构和纳米级簇的沉淀是独立的,可以单独控制。

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