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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >Effects of B and Cu Addition and Cooling Rate on Microstructure and Mechanical Properties in Low-Carbon, High-Strength Bainitic Steels
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Effects of B and Cu Addition and Cooling Rate on Microstructure and Mechanical Properties in Low-Carbon, High-Strength Bainitic Steels

机译:硼和铜的添加及冷却速率对低碳高强度贝氏体钢组织和力学性能的影响

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摘要

The effects of B and Cu addition and cooling rate on microstructure and mechanical properties of low-carbon, high-strength bainitic steels were investigated in this study. The steel specimens were composed mostly of bainitic ferrite, together with small amounts of acicular ferrite, granular bainite, and martensite. The yield and tensile strengths of all the specimens were higher than 1000 MPa and 1150 MPa, respectively, whereas the upper shelf energy was higher than 160 J and energy transition temperature was lower than 208 K (-65 °C) in most specimens. The slow-cooled specimens tended to have the lower strengths, higher elongation, and lower energy transition temperature than the fast-cooled specimens. The Charpy notch toughness was improved with increasing volume fraction of acicular ferrite because acicular ferrites favorably worked for Charpy notch toughness even when other low-toughness microstructures such as bainitic ferrite and martensite were mixed together. To develop high-strength bainitic steels with an excellent combination of strength and toughness, the formation of bainitic microstructures mixed with acicular ferrite was needed, and the formation of granular bainite was prevented.
机译:研究了硼和铜的添加及冷却速率对低碳,高强度贝氏体钢组织和力学性能的影响。钢试样主要由贝氏体铁素体,少量针状铁素体,粒状贝氏体和马氏体组成。所有样品的屈服强度和抗拉强度分别高于1000 MPa和1150 MPa,而大多数样品的上层架子能量高于160 J,能量转换温度低于208 K(-65°C)。与快速冷却的样品相比,缓慢冷却的样品往往具有较低的强度,较高的伸长率和较低的能量转换温度。随着针状铁素体的体积分数的增加,夏比缺口韧性得到改善,因为即使当贝氏体铁素体和马氏体等其他低韧性微组织混合时,针状铁素体也有利于夏比缺口韧性。为了开发强度和韧性的优异组合的高强度贝氏体钢,需要形成混有针状铁素体的贝氏体组织,并防止粒状贝氏体的形成。

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