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Synthesis of CuCr and CuCrAg alloys with extended solid solubility with nano-Al_2O_3 dispersion by mechanical alloying and consolidation by high pressure sintering

机译:机械合金化和高压烧结固结合成具有宽固溶度和纳米Al_2O_3分散度的CuCr和CuCrAg合金

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摘要

Cu-4.5Cr and Cu-4.5Cr-3Ag (wt%) alloys with nanocrystalline Al_2O_3 dispersion (5 or 10 wt%) were synthesized by mechanical alloying and consolidated by high pressure sintering at two different temperatures. Mechanical alloying/milling leads to formation of nanocrystalline matrix grains of about 40-60 nm after 25 h of milling with nanometric (< 20 nm) Al_2O_3 particles dispersed in it. After consolidation by high pressure sintering (8 GPa at 600-800℃), the dispersoids nearly retain their ultrafine size and uniform distribution, while the alloyed matrix undergoes significant grain growth. Apparent density of the compacts is about 95% of the theoretical density of the corresponding compositions. 10wt% Al_2O_3 dispersed Cu-4.5Cr-3Ag alloy consolidated at 800℃ shows maximum hardness (435 VHN) and wear resistance. High hardness at this material is due to fine grain structure with nano-dispersoids. The fine grained structure is generated due to dynamic recrystallization during high pressure sintering which has been observed through metallography as well as macro-/micro-texture analysis. The electrical conductivity of the pellets without and with nano-Al_2O_3 dispersion is about 40-45% IACS (International Annealing Copper Standard) and 35% 1ACS, respectively. Thus, mechanical alloying followed by high pressure sintering seems a potential route for developing nano-Al_2O_3 dispersed Cu-Cr and Cu-Cr-Ag alloys for heavy duty electrical contacts.
机译:通过机械合金化合成具有纳米晶Al_2O_3分散体(5或10 wt%)的Cu-4.5Cr和Cu-4.5Cr-3Ag(wt%)合金,并通过在两个不同温度下的高压烧结使其固结。机械合金化/研磨导致在研磨25 h后形成约40-60 nm的纳米晶基体晶粒,其中分散有纳米(<20 nm)Al_2O_3颗粒。通过高压烧结(600-800℃下为8 GPa)固结后,弥散体几乎保持其超细尺寸和均匀分布,而合金基体则经历了明显的晶粒长大。压坯的表观密度约为相应组合物理论密度的95%。在800℃固结的10wt%Al_2O_3分散Cu-4.5Cr-3Ag合金具有最大硬度(435 VHN)和耐磨性。该材料的高硬度归因于具有纳米分散体的细晶粒结构。细晶粒结构是由于高压烧结过程中的动态再结晶而产生的,这种现象已通过金相和宏观/微观结构分析得到了观察。不具有和具有纳米Al_2O_3分散体的粒料的电导率分别为约40-45%IACS(国际退火铜标准)和35%1ACS。因此,机械合金化然后高压烧结似乎是开发用于重型电触点的纳米Al_2O_3分散的Cu-Cr和Cu-Cr-Ag合金的潜在途径。

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