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MODELING MECHANICAL BEHAVIOR OF MATERIALS PROCESSED BY ACCUMULATIVE ROLL BONDING

机译:累积辊粘合处理材料的力学行为

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Nanostructured materials are a relatively new class of materials that exhibit high strength and toughness, thus improving performance and capabilities of products, with potential applications to automotive, aerospace and defense industries. Among the severe plastic deformation (SPD) methods currently used for achieving nanoscale structure of a material, accumulative roll bonding (ARB) is the most favorable method to produce grain refinement for continuous production of metallic sheets at a bulk scale. ARB is a deformation technique where metallic sheets are repeatedly prepared, stacked and rolled together, usually to a reduction of 50% in thickness. The main objective of this paper is to create a model that relates the process parameters and number of ARB cycles to the mechanical properties of the resultant material. The model established in this study can be a useful tool in designing the process and establishing the number of cycles needed in order to achieve the desired properties. Accumulative roll bonding experiments of various materials are analyzed and the resultant materials strength, at the corresponding ARB cycles, is modeled with good agreement.
机译:纳米结构材料是一种相对较新的材料,具有高强度和韧性,从而提高了产品的性能和能力,具有汽车,航空航天和国防行业的潜在应用。在目前用于实现材料的纳米级结构的严重塑性变形(SPD)方法中,累积辊粘合(arb)是生产晶粒细化的最有利的方法,以便以散装量表连续生产金属片。 ARB是一种变形技术,其中将金属片重复制备,堆叠在一起,通常厚度为50%。本文的主要目的是创建一个模型,该模型将过程参数和ARB循环的数量与所得材料的机械性能相关联。在本研究中建立的模型可以是设计过程中的有用工具,并建立所需的周期数以达到所需的性质。分析各种材料的累积辊粘合实验,并在相应的ARB循环处进行所得材料强度,以良好的一致为模拟。

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