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首页> 外文期刊>Journal of Engineering, Design and Technology >Effects of grain size on mechanical properties of nanostructured copper alloy by severe plastic deformation (SPD) process
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Effects of grain size on mechanical properties of nanostructured copper alloy by severe plastic deformation (SPD) process

机译:严重塑性变形(SPD)对晶粒尺寸对纳米结构铜合金力学性能的影响

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摘要

Purpose - Severe plastic deformation (SPD) has provided new opportunities in investigations of enhanced mechanical properties like high strength and ductility by permitting grain refinement to a nanometer level, especially ultra-fine grained and nanocrystalline metals and alloys. These materials have been attracting more and more research interest during the past few decades due to scientific curiosity and their engineering potentials with a significant advancement in their understanding. The purpose of this paper is to find the relationship between processing, structures and properties of these novel materials with the ultimate goal of producing a model to account for the grain size changes at the nano-scale. Design/methodology/approach - In this paper, specimens with various grain sizes from 23 to 80 μm. are obtained via processing by SPD, using equal channel angular press (ECAP) technique. The effect of grain size on the hardness properties of nanostructured copper alloy has been investigated using micro-hardness testing of the samples to test the mechanical properties of this material. Findings - The results reveal that the copper alloys processed by SPD using ECAP technique after various passes differ in the grain size and mechanical properties. The hardness test exhibits grained size dependence according to Hall-Petch relationship from room temperature. The increase in the hardness with number of passages suggest increasing in strain during deformation, as the passes increase the smaller grain size can be produced. Originality/value - The paper usefully shows how nanostructured materials by SPD technique will offer a possible solution to the problem of using light metals for certain applications by increasing the strength of materials which could be used in structures where previously strength requirement in various industries, including such as, for example, transportation, medical devices and electronics. Understanding the relationship between processing, structures and properties will enhance the performance of metals and alloys in a target application which is important in improving the mechanical properties of engineering materials that are necessary fundamental for applications of lightweight materials and structures. The influences of structural parameters, such as grain size, grain shape on plastic deformation which is important parameters in study the mechanical properties of nanostructured materials.
机译:目的-严重的塑性变形(SPD)通过允许将晶粒细化到纳米水平,尤其是超细晶粒和纳米晶体金属及合金,为增强机械性能(如高强度和延展性)的研究提供了新的机会。在过去的几十年中,由于科学的好奇心和它们的工程潜力以及对它们的理解的巨大进步,这些材料已引起越来越多的研究兴趣。本文的目的是找到这些新型材料的加工,结构和性能之间的关系,其最终目的是产生一个模型来解释纳米级晶粒尺寸的变化。设计/方法/方法-在本文中,样品的晶粒尺寸从23到80μm不等。使用等通道角压(ECAP)技术通过SPD进行处理获得。使用样品的微硬度测试来测试晶粒尺寸对纳米结构铜合金硬度特性的影响,以测试这种材料的机械性能。研究结果-结果表明,经过多次走刀后,使用ECAP技术通过SPD处理的铜合金的晶粒尺寸和力学性能不同。硬度测试显示出从室温起根据霍尔-帕奇关系的晶粒尺寸依赖性。硬度随着道次的增加而增加,表明变形期间应变增加,随着道次的增加,可以产生更小的晶粒尺寸。原创性/价值-本文通过SPD技术有效地展示了纳米结构材料如何通过增加可用于以前在各种行业中要求强度的结构中使用的材料的强度,来解决将轻金属用于某些应用的问题的可能解决方案。例如运输,医疗设备和电子产品。了解加工,结构和性能之间的关系将提高目标应用中金属和合金的性能,这对于改善工程材料的机械性能非常重要,而工程材料对于轻质材料和结构的应用是必不可少的。晶粒尺寸,晶粒形状等结构参数对塑性变形的影响是研究纳米结构材料力学性能的重要参数。

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