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首页> 外文期刊>Metallurgical and Materials Transactions, A. Physical Metallurgy and Materials Science >A Novel Ni-Containing Powder Metallurgy Steel with Ultrahigh Impact, Fatigue, and Tensile Properties
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A Novel Ni-Containing Powder Metallurgy Steel with Ultrahigh Impact, Fatigue, and Tensile Properties

机译:具有超高冲击,疲劳和拉伸性能的新型含镍粉末冶金钢

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摘要

The impact toughness of powder metallurgy (PM) steel is typically inferior, and it is further impaired when the microstructure is strengthened. To formulate a versatile PM steel with superior impact, fatigue, and tensile properties, the influences of various microstructures, including ferrite, pearlite, bainite, and Ni-rich areas, were identified. The correlations between impact toughness with other mechanical properties were also studied. The results demonstrated that ferrite provides more resistance to impact loading than Ni-rich martensite, followed by bainite and pearlite. However, Ni-rich martensite presents the highest transverse rupture strength (TRS), fatigue strength, tensile strength, and hardness, followed by bainite, pearlite, and ferrite. With 74 pct Ni-rich martensite and 14 pct bainite, Fe-3Cr-0.5Mo-4Ni-0.5C steel achieves the optimal combination of impact energy (39 J), TRS (2170 MPa), bending fatigue strength at 2 x 106 cycles (770 MPa), tensile strength (1323 MPa), and apparent hardness (38 HRC). The impact energy of Fe-3Cr-0.5Mo-4Ni-0.5C steel is twice as high as those of the ordinary high-strength PM steels. These findings demonstrate that a high-strength PM steel with high-toughness can be produced by optimized alloy design and microstructure.
机译:粉末冶金(PM)钢的冲击韧性通常较差,并且在强化显微组织时会进一步降低其冲击韧性。为了配制具有优异冲击,疲劳和拉伸性能的通用型PM钢,确定了包括铁素体,珠光体,贝氏体和富镍区域在内的各种微观结构的影响。还研究了冲击韧性与其他机械性能之间的关系。结果表明,铁素体比富镍的马氏体,其次是贝氏体和珠光体,对冲击载荷具有更大的抵抗力。但是,富镍马氏体具有最高的横向断裂强度(TRS),疲劳强度,拉伸强度和硬度,其次是贝氏体,珠光体和铁素体。 Fe-3Cr-0.5Mo-4Ni-0.5C钢具有74%的富镍马氏体和14%的贝氏体,在2 x 106次循环中达到了冲击能量(39 J),TRS(2170 MPa)和弯曲疲劳强度的最佳组合(770 MPa),抗拉强度(1323 MPa)和表观硬度(38 HRC)。 Fe-3Cr-0.5Mo-4Ni-0.5C钢的冲击能是普通高强度PM钢的两倍。这些发现表明,通过优化的合金设计和微观结构可以生产出具有高韧性的高强度永磁钢。

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