采用calphhad法和有限元法研究了热处理对27mnb4钢冷锻的影响

Y. Akyildiz, Ümit Kutsal, Yagiz Arslan, Adnan Akman, Atıf Karkinli, Mert Saglam, R. Yamanoğlu
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引用次数: 0

摘要

冷锻作为一种材料成型方法,由于没有加热步骤和表面质量高等原因,是首选的。近年来,利用有限元方法控制和预测冷锻材料的最终性能受到越来越多的关注。有限元法将微观组织演化模型与失效准则相结合,为解决现代冷锻工业中的复杂问题提供了方法。紧固件行业广泛采用冷锻,冷锻可以形成含锰和含硼的钢,如27MnB4,以获得较高的力学性能。本文研究了软化退火和球化退火两种热处理方式对27MnB4螺栓成形性能的影响。采用hot - calc 2022a和Forge NxT 3.2等软件对线材组织进行预测,并对同一线材在两种不同热处理条件下的冷成形工艺进行评价。因此,本研究也提供了27MnB4钢的显微组织特征与冷成形性能之间的关系。用CCT图预测了27MnB4的微观结构。预测的微观结构与生产线上27MnB4样品的微观结构相一致。此外,由于显微组织的差异,27MnB4钢在热轧状态下的温度、von Mises应力和等效应变分布均高于退火状态。这些结果表明,计算材料工程方法和模拟技术可以成为冷成形过程的实用工具。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
INVESTIGATING THE EFFECT OF HEAT TREATMENT ON THE COLD FORGING OF 27MNB4 STEEL VIA CALPHAD METHODOLOGY AND FEM
As a material forming method, cold forging is preferred due to the reasons like absence of a heating step and high surface quality. Recently, the finite element method (FEM) has received growing attention for controlling and predicting final material properties for cold forging applications. FEM combines microstructure evolution models with failure criteria, thus providing solutions to complicated problems in the modern cold forging industry. The fastener industry extensively utilizes cold forging, in which manganese and boron-containing steels like 27MnB4 can be formed to obtain high mechanical properties. The current study investigates the effect of two different heat treatments, namely softening and spheroidizing annealing, on the formability of 27MnB4 bolts. Softwares such as Thermo-Calc 2022a and Forge NxT 3.2 were used to predict the microstructure of the wire rod and evaluate the cold forming process of the same rod under two different heat treatment conditions. Therefore, the current study also provides a relationship between microstructural features and the cold formability of 27MnB4 steel. The microstructure of 27MnB4 is predicted by CCT diagrams. The predicted microstructure corresponds to the microstructure of 27MnB4 samples taken from the production line. In addition, temperature, von Mises stress, and equivalent strain distributions for 27MnB4 steel in the hot rolled state were calculated higher than in annealed states due to the differences in the microstructure. These results demonstrate that computational material engineering methods and simulation techniques could be practical tools for cold forming processes.
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