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Mechanical alloying of high-strength copper alloys containing TiB2 and Al2O3 dispersoid particles

机译:含TiB2和Al2O3分散颗粒的高强度铜合金的机械合金化

摘要

Considerable effort is being devoted to the development of high strength, high conductivity copper alloys both for applications in electronics as well as in aerospace, where the ability to remove heat and to retain a sufficient strength is of critical importance. Examples of such alloys are Cu-Cr-Zr and Cu-Ni-Sn alloys prepared by rapid solidification and by osprey processing (1-6), in situ fabricated fiber-reinforced Cu-Cr, Fe, or Nb composites (7) and mechanically alloyed Cu-bcc metal mixtures (8-10) . the previously examined mechanically alloyed materials showed good strength after consolidation of the milled powders but showed signs of structural instabilities at high temperatures due to coarsening of the dispersed bcc metal particles. The present study examines alloys prepared by milling and consolidating mixtures of copper with other elements which will produce stable compound phases (TiB2 and Al2O3) either during milling or during subsequent annealing. Such dispersed particles should be more resistant to coarsening than the earlier bcc metal particles and should lead to improved strength and stability after high temperature treatments.
机译:在用于电子以及航空领域的高强度,高电导率铜合金的开发上,人们投入了大量的精力,在这些领域中,散热和保持足够强度的能力至关重要。此类合金的示例包括通过快速凝固和鱼鳞加工(1-6),原位制造的纤维增强Cu-Cr,Fe或Nb复合材料(7)制备的Cu-Cr-Zr和Cu-Ni-Sn合金。机械合金化的Cu-bcc金属混合物(8-10)。以前检查过的机械合金化材料在粉碎的粉末固结后显示出良好的强度,但由于分散的密闭金属颗粒的粗化,在高温下显示出结构不稳定的迹象。本研究研究了通过研磨和固结铜与其他元素的混合物制备的合金,这些元素会在研磨过程中或随后的退火过程中产生稳定的化合物相(TiB2和Al2O3)。这种分散的颗粒应比早期的bcc金属颗粒更耐粗化,并应在高温处理后提高强度和稳定性。

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