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Investigation of the Dendritic Structure Influence on the Electrical and Mechanical Properties Diversification of the Continuously Casted Copper Strand

机译:树枝状结构对持续铸铜股的电气和力学性能多样化的研究

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摘要

The properties of copper in its solid state are strongly affected by the crystallization conditions of the liquid material. ETP grade copper (Electrolytic Tough Pitch Copper) contains oxygen, which causes Cu2O oxide to crystallize in the interdendritic spaces during solidification process which due to the shape of continuous casting mould and the feed of liquid copper during the crystallization process in strand casting might cause a high risk of macrosegregation of oxygen in the copper structure. In the current paper the implied interactions of the dendritic structure of the copper strand in terms of homogeneity at the cross-section of its electrical, mechanical and plastic properties determined based on the samples taken parallelly and perpendicularly to the surface of the dendritic boundaries were analysed. The obtained results were confronted with scanning electron microscopy (SEM) images of the fractures formed during uniaxial tensile test. It has been observed that when the crystallites were arranged perpendicularly to the tensile direction the yield strength (YS) was lower and the fractures were brittle. On the other hand, when the crystallites were arranged parallelly to the tensile direction the fractures were plastic and elongated necking was observed along with the higher YS and total elongation values. The differences in values vary in terms of the applied direction of the tensile force. A characteristic positioning of the Cu2O oxide particles inside the fracture depending on the crystallite alignment and the direction of the applied tensile force has been observed.
机译:其固态的铜的性质受液体材料的结晶条件的强烈影响。 ETP级铜(电解坚韧的铜)含有氧,其在凝固过程中导致Cu 2 O氧化物在凝固过程中结晶,这是由于连续铸造模具的形状和液体铜期间在股线铸造期间的液体铜的饲料可能导致a铜结构中氧气大量聚集的高风险。在当前纸张中,分析了基于并联和垂直于树突式边界表面采样的样品的其电气,机械和塑性性质的横截面的均匀性在均匀性方面所暗示的铜丝的隐含相互作用。所得到的结果与在单轴拉伸试验期间形成的裂缝的扫描电子显微镜(SEM)图像面对。已经观察到,当微晶垂直于拉伸方向上布置时,屈服强度(Ys)较低,裂缝脆弱。另一方面,当微晶平行布置到拉伸方向时,裂缝是塑料,并且随着较高的Ys和总伸长率值观察细长的缩颈。值的差异在拉伸力的施加方向方面变化。已经观察到根据晶体对准和施加的拉力方向的断裂内的Cu 2氧化物颗粒的特征定位。

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