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Dynamic High Pressure Torsion (DHPT)a??A Novel Method for High Strain Rate Severe Plastic Deformation

机译:动态高压扭转(DHPT)a ??一种高应变率严重塑性变形的新方法

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Metals with a fine-grained microstructure have exceptional mechanical properties. Severe plastic deformation (SPD) is one of the most successful ways to fabricate ultrafine-grained (UFG) and nanostructured (NC) materials. Most of the SPD techniques employ very low processing speeds. However, the lowest steady-state grain size which can be obtained by SPD is considered to be inversely proportional with the strain rate at which the severe deformation is imposed. In order to overcome this limitation, methods operating at higher rates have been envisaged and used to study the fragmentation process and the properties of the obtained materials. However, almost none of these methods, employ hydrostatic pressures which are needed to prevent the material from failing at high deformation strains. As such, their applicability is limited to materials with a high intrinsic ductility. Additionally, in some methods the microstructural changes are limited to the surface layers of the material. To circumvent these restrictions, a novel facility has been designed and developed which deforms the material at high strain rate under high hydrostatic pressures. Using the facility, commercially pure aluminum was processed and analysis of the deformed material was performed. The microstructure evolution in this material was compared with that observed in static high pressure torsion (HPT) processed material.
机译:具有细晶粒组织的金属具有出色的机械性能。严重的塑性变形(SPD)是制造超细颗粒(UFG)和纳米结构(NC)材料的最成功方法之一。大多数SPD技术采用非常低的处理速度。然而,可以认为通过SPD获得的最低稳态晶粒尺寸与施加严重变形的应变率成反比。为了克服该限制,已经设想了以更高速率操作的方法,并且该方法用于研究破碎过程和所得材料的性质。但是,这些方法中几乎没有一种采用静水压力来防止材料在高形变应变下失效。因此,它们的适用性仅限于具有高固有延展性的材料。另外,在某些方法中,微观结构的变化仅限于材料的表面层。为了克服这些限制,已经设计和开发了一种新颖的设备,该设备可以在高静水压力下以高应变率使材料变形。使用该设备对市售的纯铝进行加工,并对变形材料进行分析。将这种材料的微观结构演变与在静态高压扭转(HPT)处理的材料中观察到的进行了比较。

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