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首页> 外文期刊>Journal of Materials Science >Electrical and elastic properties of Cu-W graded material produced by vibro compaction
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Electrical and elastic properties of Cu-W graded material produced by vibro compaction

机译:振动压实生产的Cu-W梯度材料的电学和弹性

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Self-formed W graded preform was produced by size segregation of weakly vibrated tungsten bimodal granular medium. The bimodal granular media bed was initially set up with larger W agglomerates placed on the bottom and with smaller agglomerates on the top of the container. During the vibro-compaction treatment the granular bed progresses through three distinguished compaction stages: percolation, diffusion like or hopping, and non-equilibrium steady state, which exhibit different packing factor and structures. Shorter vibration time results in a skeleton type of microstructure, while a graded structure was formed when the system reaches a non-equilibrium steady state. The vibrated beds were uniaxially pressed to manufacture sintered W preform with a graded interconnected porosity. High temperature sintering treatments complete the evolution of a steeper gradient in porosity predominantly through coalescence process. Electrical and elastic properties of the final materials, produced by infiltration of Cu into the sintered W preforms, are strongly influenced by the W microstructural evolution. It has been shown that the optimal microstructure for electrical properties consists of a highly 3D interconnected Cu phase (skeleton type of microstructure), while the graded structure exhibits higher E-modulus. This work was undertaken to better understand the nature of the graded structure and to study the relationship between the self-formed microstructure types, electrical and elastic materials properties.
机译:通过弱振动的钨双峰颗粒介质的尺寸分离产生自形成的W级预成型坯。最初设置双峰颗粒介质床,将较大的W附聚物放在底部,将较小的附聚物放在容器的顶部。在振动压实处理过程中,颗粒床经历了三个不同的压实阶段:渗滤,类似或跳跃的扩散以及非平衡稳态,表现出不同的堆积因子和结构。较短的振动时间会导致骨架类型的微结构,而当系统达到非平衡稳态时会形成渐变结构。振动床被单轴压制以制造具有梯度互连孔隙率的烧结W预成型坯。高温烧结处理主要通过聚结过程完成了孔隙率陡峭梯度的演变。铜渗透到烧结的W型坯中产生的最终材料的电学和弹性,受W微观组织演变的强烈影响。已经表明,用于电性能的最佳微观结构由高度3D互连的Cu相(骨架类型的微观结构)组成,而渐变结构表现出更高的E模量。进行这项工作是为了更好地理解渐变结构的性质,并研究自形成的微观结构类型,电和弹性材料特性之间的关系。

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