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Developing High Strength-High Toughness Low Carbon Steel Using Combined V-Ti-Micro-Alloying and Different Thermo-Mechanical Treatments

机译:使用组合的V-Ti-Micro合金化和不同的热机械处理显影高强度高韧性低碳钢

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This work aims at designing and developing low carbon steel alloys to meet the high tensile strength, high ductility and high impact toughness properties. The effect of solid solution mechanism, precipitation hardening, as well as grain refinement were developed with different Manganese content (0.78-2.36wt%) combined with Vanadium(0.008-0.1wt%) and Titanium (0.002-0.072wt%) microalloying additions. The controlled thermo-mechanical treatments and chemical compositions play a big role in developing the microstructure and the corresponding mechanical properties. Therefore, the studied chemical compositions were treated thermo-mechanically by two different ways of changing start and finish forging temperatures with subsequent air cooling. The first way by start forging from 1050 to 830°C and the second from 950 to730°C. The second way of forging process developed finer grain sizes and higher ultimate tensile strengths for all the studied steel alloys. In spite of finer grain sizes, the impact toughness value was lower in the second regime due to detrimental influence of precipitation strengthening in the ferrite. A combination of 544 MPa yield strength, 615 MPa ultimate tensile strength, 20% elongation and 138 Joule impact toughness has been attained.
机译:这项工作旨在设计和开发低碳钢合金以满足高抗拉强度,高延展性和高冲击韧性特性。用不同的锰含量(0.78-2.36wt%)与钒(0.008-0.1wt%)和钛(0.002-0.072wt%)微合金加入,产生固体溶液机理,沉淀硬化以及晶粒细化的影响。受控热机械处理和化学组成在开发微观结构和相应的机械性能方面发挥着重要作用。因此,通过两种不同的方式通过改变启动和完成锻造温度随后的空气冷却来处理研究的化学组合物。首先启动从1050到830°C和950到730°C的锻炼。用于所有研究的钢合金的锻造过程的第二种方式开发出更精细的晶粒尺寸和更高的极限拉伸强度。尽管粒度细粒,但由于铁氧体中沉淀强化的有害影响,第二种制度的冲击韧性值较低。已经实现了544MPa屈服强度,615MPa的抗拉强度,20%伸长率和138焦耳冲击韧性的组合。

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