...
首页> 外文期刊>Journal of Materials Science >Rolling strain effects on the interlaminar properties of roll bonded copper/aluminium metal laminates
【24h】

Rolling strain effects on the interlaminar properties of roll bonded copper/aluminium metal laminates

机译:轧制应变对轧制铜/铝金属层压板层间性能的影响

获取原文
获取原文并翻译 | 示例
           

摘要

Metal laminates of copper/aluminium were prepared by roll bonding at 430℃ with various rolling strains. The effect of the rolling strain on the interface development and bond strength of the laminates was examined. It was found that as the rolling strain increased the bond strength of the laminates was generally enhanced in both as-rolled and sintered conditions. Critical post-rolling sintering conditions were found to exist for achieving optimum bond strengths of the laminates. It is evident that the development of optimum strength for the laminates is related to the formation of various intermetallic phases at the interface which is in turn determined by the diffusion activity of the metallic elements in the area. The greatest strength enhancement was generally observed to develop in the 60% rolled samples, suggesting that rolling strain of the roll bonding process may impose great influence on diffusion of the metallic elements. A higher copper content, without significant Kirkendall void formation, was found to build up in the interface area of the material, leading to development of strong interfacial phases. It is believed that a higher rolling strain of the roll bonding process has provided a greater area of physical contact between the bonded metals and imposed diffusion enhancement of the metallic elements across the interface.
机译:铜/铝金属层压板是通过在430℃下以各种轧制应变进行辊压粘合而制备的。检查了轧制应变对层压板的界面发展和粘结强度的影响。已经发现,随着轧制应变的增加,层压板的结合强度在轧制和烧结条件下通常都得到增强。发现存在关键的轧制后烧结条件,以实现层压板的最佳粘结强度。显然,层压板最佳强度的发展与界面处各种金属间相的形成有关,而金属间相的形成又取决于该区域中金属元素的扩散活性。通常观察到最大的强度增强发生在60%的轧制样品中,这表明轧制粘合过程的轧制应变可能会对金属元素的扩散产生很大影响。发现较高的铜含量,没有明显的克肯德尔空隙形成,在材料的界面区域积聚,导致形成牢固的界面相。可以认为,辊压焊接工艺的较高的轧制应变已在键合的金属之间提供了更大的物理接触面积,并增强了金属元素在界面上的扩散。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号