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Quantitative Description of External Force Induced Phase Transformation in Silicon–Manganese (Si–Mn) Transformation Induced Plasticity (TRIP) Steels

机译:硅锰(Si-Mn)相变诱导塑性(TRIP)钢中外力诱导相变的定量描述

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摘要

Transformation Induced Plasticity (TRIP) steels with silicon–manganese (Si–Mn) as the main element have attracted a lot of attention and great interest from steel companies due to their low price, high strength, and high plasticity. Retained austenite is of primary importance as the source of high strength and high plasticity in Si–Mn TRIP steels. In this work, the cold rolled sheets of Si–Mn low carbon steel were treated with TRIP and Dual Phase (DP) treatment respectively. Then, the microstructure and composition of the Si–Mn low carbon steel were observed and tested. The static tensile test of TRIP steel and DP steel was carried out by a CMT5305 electronic universal testing machine. The self-built true stress–strain curve model of TRIP steel was verified. The simulation results were in good agreement with the experimental results. In addition, the phase transformation energy of retained austenite and the work borne by austenite in the sample during static stretching were calculated. The work done by austenite was 14.5 J, which was negligible compared with the total work of 217.8 J. The phase transformation energy absorption of retained austenite in the sample was 9.12 J. The role of retained austenite in TRIP steel is the absorption of excess energy at the key place where the fracture will occur, thereby increasing the elongation, so that the ferrite and bainite in the TRIP steel can absorb energy for a longer time and withstand more energy.
机译:以硅锰(Si-Mn)为主要元素的相变诱导塑性(TRIP)钢因其低价格,高强度和高塑性而引起了钢铁公司的广泛关注和兴趣。残余奥氏体作为Si-Mn TRIP钢中高强度和高塑性的来源至关重要。在这项工作中,分别用TRIP和双相(DP)处理了Si-Mn低碳钢冷轧板。然后,观察并测试了Si-Mn低碳钢的组织和成分。 TRIP钢和DP钢的静态拉伸试验是通过CMT5305电子万能试验机进行的。验证了TRIP钢自建的真实应力-应变曲线模型。仿真结果与实验结果吻合良好。此外,计算了静态拉伸过程中残余奥氏体的相变能量和样品中奥氏体所承担的功。奥氏体所做的功为14.5 J,与总功217.8 J相比可忽略不计。样品中残留奥氏体的相变能量吸收为9.12J。TRIP钢中残留奥氏体的作用是吸收多余的能量在会发生断裂的关键位置处,从而增加了伸长率,因此TRIP钢中的铁素体和贝氏体可以吸收更长的时间并承受更多的能量。

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