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Dramatic improvement of strain hardening and ductility to 95 in highly-deformable high-strength duplex lightweight steels

机译:高变形高强度双相轻质钢的应变硬化和延展性显着提高到95%

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摘要

Ferrite + austenite duplex lightweight steels have been actively developed by adding low-density Al for overcoming a limitation of stiffness deterioration by a traditional approach to obtain a weight reduction. Multiple-stage deformation mechanism in lightweight steels, i.e., simultaneous formation of deformation-induced martensite and deformation twin and additional plasticity by twinning, has been nominated as an attractive strategy, but shows a steady flow behavior with early plastic instability. Here, we present a newly designed Fe-0.3C-9Mn-5Al steel in order to obtain an optimal level of stability of austenite and a resultant outstanding combination of tensile strength and ductility, e.g., 874 MPa and 72%, together with sufficiently high strain hardening. These enhanced properties are attributed to the decreased austenite stability by controlling the austenite size and alloying partitioning due to variation in austenite fraction inside duplex microstructures. The present work gives a promise for structural applications requiring both reduced specific weight and remarkable deformability.
机译:铁氧体+奥氏体双相轻质钢通过添加低密度的Al来积极开发,以克服通过传统方法获得的重量减轻的刚度劣化的限制。轻质钢的多阶段变形机制,即同时形成形变诱发的马氏体和形变孪晶,以及通过孪晶产生额外的可塑性,已被认为是一种有吸引力的策略,但显示出稳定的流动行为和早期的塑料不稳定性。在这里,我们提出一种新设计的Fe-0.3C-9Mn-5Al钢,以便获得最佳水平的奥氏体稳定性以及由此获得的抗拉强度和延展性(例如874 MPa和72%)以及足够高的抗拉强度的出色结合应变硬化。这些增强的特性归因于通过控制奥氏体尺寸和由于双相微结构内部奥氏体分数变化而引起的合金化分配,奥氏体稳定性降低。本工作为既需要减小比重又需要显着变形的结构应用提供了希望。

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