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Processing of Cu-Cr alloy for combined high strength and high conductivity

机译:Cu-Cr合金加工高强度和高导电性

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摘要

High strength and high conductivity (HSHC) are two intrinsic properties difficult to combine in metallic alloy design because; almost all strengthening mechanisms also lead to reduced conductivity. Precipitation hardening by nano-sized precipitates had proven to be the most adequate way to achieve the optimum combination of strength and conductivity in copper based alloys. However, established precipitation strengthened Cu- alloys are limited to very dilute concentration of solutes thereby limiting the volume proportion hardening precipitates. In this work, we report the investigation of the reprocessing of higher Cr concentration Cu- based alloys via rapid solidification. It is found that the rapid solidification in the as-cast ribbon imposed combined solution extension and ultra-refinement of Cr rich phases. X-ray diffraction evidences suggest that the solid solution extension was up to 6wt%Cr. Lattice parameters determined confirmed the many folds extension of solid solution of Cr in Cu. Thermal aging studies of the cast ribbons indicated that peak aging treatments occurred in about twenty minutes. Peak aged hardness ranged from about 200 to well over 300Hv. The maximum peak aged hardness of 380Hv was obtained for alloy containing 6wt.%Cr but with conductivity of about 50%IACS. The best combined strength/conductivity was obtained for 4wt.%Cr alloy with hardness of 350HV and conductivity of 80% IACS. The high strengths observed are attributed to the increased volume proportion of semi-coherent Cr rich nano-sized precipitates that evolved from the supersaturated solid solution of Cu-Cr that was achieved from the high cooling rates imposed by the ribbon casting process. The rapid overaging of the high Cr concentration Cu-Cr alloy is still a cause for concern in optimising the process for reaching peak HSHC properties. It is still important to investigate a microstructural design to slow or severely restrict the overaging process. The optimum HSHC property reported here is a rare combination of high strength (>350Hv ~ 900MPa) and conductivity (50 – 80% IACS) found in metallic alloys.
机译:高强度和高导电性(HSHC)是两种难以结合金属合金设计的内在性质,因为;几乎所有强化机制也导致导电性降低。通过纳米沉淀物的沉淀硬化已被证明是实现铜基合金中的强度和电导率最佳的最佳方法。然而,建立的沉淀强化Cu-合金限于非常稀释的溶质浓度,从而限制体积比例沉淀物。在这项工作中,我们通过快速凝固报告了对高Cr浓度Cu基合金的再加工研究。结果发现,由于铸造带状施加的溶液延伸和富铬相的超细化的快速凝固。 X射线衍射证据表明,固溶溶液延伸高达6wt%Cr。确定晶格参数证实了Cu中Cr固体溶液的许多折叠延伸。铸带的热老化研究表明,峰值老化治疗发生在大约20分钟内。峰值老化硬度范围从约200到超过300hv。获得含有6wt%的合金的380hv的最大峰值老化硬度。%Cr,但具有约50%IACS的电导率。为4wt的最佳组合强度/电导率得到4wt。%Cr合金,硬度为350hv,导电性为80%IAC。所观察到的高强度归因于从Cu-Cr的超饱和固溶溶液的富含纳米沉淀物的体积比例增加,这是由带状铸造方法施加的高冷却速率所达到的Cu-Cr的过饱和固溶体。高Cr浓度Cu-Cr合金的快速过度仍然是优化达到峰值HSHC性质的过程的原因。调查微观结构设计慢慢或严重限制过高过程仍然很重要。这里报道的最佳HSHC性质是金属合金中发现的高强度(> 350HV〜900MPa)和电导率(50-80%IACS)的罕见组合。

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