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Development of high silicon dual phase austempered ductile iron

机译:高硅双相奥氏体球墨铸铁的研制

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摘要

This work deals with the feasibility of obtaining Austempered Ductile Iron with Dual Phase structures (DPADI) through heat treatment, starting from different as-cast microstructures. The mechanical properties on these microstructures were evaluated. DPADI microstructures were obtained by adding different tenors of silicon (2.4% to 4.2%) to the melts and keeping the other alloying elements constant. The study focused on the determination of the time required to achieve the percentages of equilibrium phases (ferrite and austenite) at different temperatures in the intercritical temperature interval as a function of the starting as cast microstructure. The results showed that, as the silicon content increases, higher amount of ferrite is present in the as cast structure, and the time required to reach the thermodynamic equilibrium phases in the intercritical temperature interval is markedly reduced. Similarly, for a constant chemical composition, as the intercritical austenitizing temperature increases, the time required to reach the quantities of the equilibrium phases decreases. Regarding mechanical properties, the tests revealed that, as expected, as intercritical austenitising temperature increases so do tensile strength and hardness due to the higher ausferrite content in the DPADI matrix. These results indicate that high silicon Ductile Iron (with Si content higher than 3%) with a mostly ferritic microstructure in as cast conditions yields DPADI microstructures able to dispense with prior annealing heat treatments since the time required to reach the phase equilibrium percentages is compatible with the industrial practice and the mechanical properties are similar as compared to DPADI structures deriving from fully ferritic matrices.
机译:这项工作处理了从不同的铸态微观结构开始,通过热处理获得具有双相结构(DPADI)的奥氏体球墨铸铁的可行性。评价了这些微结构上的机械性能。通过向熔体中添加不同含量的硅(2.4%至4.2%)并保持其他合金元素恒定来获得DPADI微观结构。该研究的重点是确定临界温度区间内不同温度下达到平衡相(铁素体和奥氏体)百分比所需的时间,该时间取决于铸件组织的开始。结果表明,随着硅含量的增加,铸态组织中铁素体的含量更高,并且在临界温度区间内达到热力学平衡相所需的时间明显减少。类似地,对于恒定的化学组成,随着临界奥氏体化温度的升高,达到平衡相量所需的时间减少。关于机械性能,测试表明,正如预期的那样,随着临界奥氏体化温度的升高,由于DPADI基体中较高的奥氏体含量,拉伸强度和硬度也随之提高。这些结果表明,在铸造条件下具有大部分为铁素体显微组织的高硅球墨铸铁(Si含量高于3%)产生了DPADI显微组织,能够省去先前的退火热处理,因为达到相平衡百分比所需的时间与与源自全铁素体基体的DPADI结构相比,工业实践和机械性能相似。

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