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首页> 外文期刊>JOM >Quasi-static Tensile and Compressive Behavior of Nanocrystalline Tantalum based on Miniature Specimen Testing-Part I: Materials Processing and Microstructure
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Quasi-static Tensile and Compressive Behavior of Nanocrystalline Tantalum based on Miniature Specimen Testing-Part I: Materials Processing and Microstructure

机译:基于微型样品检测的纳米晶钽的准静态拉伸和压缩行为 - 第一部分:材料加工和微观结构

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Grain size reduction of metals into ultrafine-grained (UFG, grain size 100 nm < d < 1000 nm) and nanocrystalline (NC, d < 100 nm) regimes results in considerable increase in strength along with other changes in mechanical behavior such as vanishing strain hardening and limited ductility. Severe plastic deformation (SPD) has been among the favored technologies for the fabrication of UFG/NC metals. Primary past research efforts on SPD UFG/NC metals have been focused on easy-to-work metals, especially face-centered cubic metals such as copper, nickel, etc., and the limited efforts on body-centered cubic metals have mainly focused on high strain rate behavior where these metals are shown to deform via adiabatic shear bands. Except for the work on Fe, only a few papers can be found associated with UFG/NC refractory metals. In the first part of the present work (Part I), high-pressure torsion (HPT) is used to process UFG/NC tantalum, a typical refractory metal. The microstructure of the HPT disk as a function of radial location as well as orientation will be examined. In the subsequent part (Part II), the location-specific mechanical behavior will be presented and discussed. It is suggested that refractory metals such as Ta are ideal to employ SPD technology for microstructure refinement because of the extremely high melting point and relatively good workability.
机译:将金属的晶粒尺寸降低到超细颗粒(UFG,粒度100nm <1000nm)和纳米晶(Nc,D <100nm)的方案中导致强度相当大的增加以及机械行为的其他变化,例如消失菌株硬化和有限的延展性。严重的塑性变形(SPD)是制备UFG / NC金属的有利技术之一。初级过去的SPD UFG / NC金属的研究努力一直专注于易于工作的金属,特别是以铜,镍等为中心的立方金属,以及身体中心立方金属的有限努力主要集中在高应变速率行为,其中这些金属被视为通过绝热剪切带变形。除FE的工作外,只有几篇论文只能发现与UFG / NC耐火金属相关联。在本作工作(第一部分)的第一部分中,高压扭转(HPT)用于处理UFG / NC钽,典型的难熔金属。将检查HPT盘的微观结构作为径向位置以及取向的函数。在随后的部分(第二部分)中,将介绍和讨论定位特定的机械行为。建议,由于极高的熔点和相对良好的可加工性,难以使用SPD技术的耐火金属是使用SPD技术的理想选择。

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