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High Tensile Ductility and Strength in Dual-phase Bimodal Steel through Stationary Friction Stir Processing

机译:固定摩擦搅拌双相双峰钢的高拉伸延展性和强度

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The combination of high strength and good ductility are very desirable for advanced structural and functional applications. However, measures to enhance strength typically lead to ductility reduction due to their inverse correlation, nano-grained structures for an instance. Bi-modal grain structure is promising in this regard, but its realization is limited by multiple complex processing steps. Here, we demonstrate a facile single-step processing route for the development of bimodal grain structure in austenitic stainless steel, SS316L. The bimodal structure comprised of fine martensite grains (500?nm) sandwiched between coarse austenite grains (~10?μm). The dual-phase bimodal structure demonstrated higher yield strength (~620?MPa) compared to ultra-fine grain structure (~450?MPa) concurrent with high uniform tensile ductility (~35%). These exceptional properties are attributed to unique dual-phase, bimodal grain structure which delayed the onset of plastic instability resulting in higher strength as well as larger uniform elongation and work-hardening rate. Our approach may be easily extended to a wide range of material systems to engineer superior performance.
机译:高强度和良好延展性的结合对于先进的结构和功能应用是非常理想的。但是,增强强度的措施通常会由于其反相关(例如纳米晶粒结构)而导致延展性降低。在这方面,双峰晶粒结构是有希望的,但是其实现受到多个复杂加工步骤的限制。在这里,我们演示了一种用于开发奥氏体不锈钢SS316L中的双峰晶粒结构的简便的单步加工路线。双峰结构由夹在粗奥氏体晶粒(〜10?μm)之间的细马氏体晶粒(<500?nm)组成。与超细晶粒结构(〜450?MPa)相比,双相双峰结构具有更高的屈服强度(〜620?MPa),同时具有较高的均匀拉伸延展性(〜35%)。这些优异的性能归因于独特的双相,双峰晶粒结构,该结构延迟了塑料不稳定性的发生,从而导致了更高的强度以及更大的均匀伸长率和加工硬化率。我们的方法可以轻松扩展到各种材料系统,以实现卓越的性能。

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