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The Influence of Tempering Process for DP Lateritic Steel in Hardness and Microstructure Behavior

机译:DP壁钢的回火过程对硬度和微观结构行为的影响

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In this study, the influence of tempering temperature on dual phase (DP) steel lateritic has been examined. Lateritic is chosen because of its excellence as austenite stabilizer in the formation of martensite and also increase the weldability due to nickel content. The hardness and microstructure behavior of steels were the main focus of this research. One of the goals was to obtain the combination of high strength and ductile materials for automotive application. The specimens used in this study were low carbon steel made by the hot-rolled process and followed by the initial heating process with various temperature (760 °C, 800 °C, 840 °C) continued with rapid cooling. The specimens also conducted by secondary heating with tempering process at 450 °C in an hour with very slow cooling. The experimental results showed that correlation between temperatures with hardness properties of materials. The hardness of the specimens increases as temperature increases. It was because austenite phase has a sufficient time and temperature to form, therefore the amount of transformed austenite becomes martensite was greater. The highest hardness reached by T =840 °C was 46.98 HRC, it was about 153% from as cast (18.54 HRC). Decreasing in hardness value when the specimen was tempering at 450 °C indicated that martensite phase has been transformed into tempered martensite.
机译:在该研究中,研究了回火温度对双相(DP)钢链状的影响。选择后蛋白是由于其作为奥氏体稳定剂在形成马氏体中的卓越性,并且还增加了由于镍含量引起的可焊性。钢的硬度和微观结构行为是这项研究的主要重点。其中一个目标是获得汽车应用的高强度和韧性材料的组合。本研究中使用的标本是通过热轧工艺制成的低碳钢,然后持续快速冷却,随后具有各种温度(760℃,800°C,840°C)的初始加热过程。该样品还通过在450℃下在450℃下的次级加热进行,在一个非常缓慢的冷却中。实验结果表明,材料硬度与材料的硬度之间的相关性。随着温度的增加,标本的硬度增加。这是因为奥氏体相具有足够的时间和温度来形成,因此转化的奥氏体的量变为马氏体更大。 T = 840°C达到的最高硬度为46.98HRC,从铸顿(18.54小时)约为153%。当样品在450℃的回火时,在硬度值下降表明马氏体相变为回火马氏体。

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