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Microstructural evolution of copper-titanium alloy during in-situ formation of TiB2 particles

机译:原位形成TiB2颗粒时铜钛合金的微观组织演变

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摘要

Bulk Cu-Ti alloy reinforced by TiB2 nano particles was prepared using in-situ reaction between Cu-3.4%Ti and Cu-0.7%B master alloys along with rapid solidification and subsequent heat treatment for 1-10 h at 900 C. High-resolution transmission electron microscopy (HRTEM) characterization showed that primary TiB2 nano particles and TiB whiskers were formed by in-situ reaction between Ti and B in the liquid copper. The formation of TiB whiskers within the melt led to coarsening of TiB2 particles. Primary TiB2 particles were dispersed along the grain boundaries and hindered grain growth at high temperature, while the secondary TiB2 particles were formed during heat treatment of the alloy by diffusion reaction of solute titanium and boron inside the grains. Electrical conductivity and hardness of the composite were evaluated during heat treatment. The results indicated that the formation of secondary TiB2 particles in the matrix caused a delay in hardness reduction at high temperature. The electrical conductivity and hardness increased up to 8 h of heat treatment and reached 33.5% IACS and HV 158, respectively. .
机译:利用Cu-3.4%Ti和Cu-0.7%B中间合金之间的原位反应,快速凝固并随后在900°C下热处理1-10小时,制备了由TiB2纳米颗粒增强的块状Cu-Ti合金。分辨率透射电镜(HRTEM)表征表明,液态铜中Ti和B之间的原位反应形成了初级TiB2纳米颗粒和TiB晶须。熔体中TiB晶须的形成导致TiB2颗粒变粗。 TiB2初级颗粒沿晶界分散并在高温下阻碍晶粒生长,而二级TiB2颗粒是在合金热处理过程中通过固溶钛和硼在晶粒内的扩散反应形成的。在热处理过程中评估了复合材料的电导率和硬度。结果表明,在基质中形成二次TiB2颗粒导致了高温下硬度降低的延迟。经过长达8 h的热处理,其电导率和硬度增加,分别达到33.5%IACS和HV 158。 。

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