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首页> 外文期刊>Materials Science and Technology: MST: A publication of the Institute of Metals >Effect of cooling rate on microstructure of Ti-6Al-4V forging
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Effect of cooling rate on microstructure of Ti-6Al-4V forging

机译:冷却速度对Ti-6Al-4V锻件组织的影响

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摘要

The objectives of this work were to study the microstructural changes and tensile properties that resulted from controlled cooling of a Ti - 6Al - 4V alloy that had been pancake forged. The alloy was forged at 954℃ and specimens cut from the forging were annealed at 975℃ for 30 mm and cooled down to room temperature at different cooling rates ranging from 20 K min{sup}(-1) to 490 K min{sup}(-1). The specimens had a duplex microstructure consisting of elongated primary α particles and secondary finerαlamellae with some residual fi phase layers between them. The average length and width of primary a particles decreased and the aspect ratio and volume fraction of particles increased when the cooling rate was increased. The average lamellae spacing decreased from about 1 μm to 0.3 μm when the cooling rate increased from 25 K min{sup}(-1) to 490 K min{sup}(-1). Lamellar a contained 3.0 - 5.2 wt-%Al and 1.4 - 2.1 wt-%V, while the β layers contained 1.4-2.8 wt-%Al, 12-18 wt-%V and 1.5-2.4 wt-%Fe. In the a lamellae, the concentration of aluminium increased and the concentration of vanadium went through a minimum with an increase in cooling rate. In the β layers, the concentration of aluminium increased, while the concentration of vanadium decreased with increasing cooling rate. The volume fraction of the p phase decreased from 10-12% to 4-5% as the cooling rate increased from 25 to 490 K min{sup}(-1). The tensile strength increased by approximately 7% when increasing the cooling rate from 25 to 370 K min{sup}(-1), while the reduction in area achieved a 29% peak increase when the cooling rate was increased from 25 to approximately 325 K min{sup}(-1). A discussion of the effects of cooling rate on microstructure and properties is also given.
机译:这项工作的目的是研究由薄煎饼锻造的Ti-6Al-4V合金的受控冷却导致的显微组织变化和拉伸性能。合金在954℃锻造,从锻件上切下的试样在975℃退火30 mm,然后以20 K min {sup}(-1)至490 K min {sup}的不同冷却速率冷却至室温。 (-1)。标本具有由细长的初生α颗粒和次生的较细α薄片组成的双相微观结构,它们之间有一些残余的fi相层。当冷却速率增加时,初生a颗粒的平均长度和宽度减小,而长径比和颗粒的体积分数增加。当冷却速率从25 K min {sup}(-1)增加到490 K min {sup}(-1)时,平均薄片间距从大约1μm减小到0.3μm。薄片a包含3.0-5.2重量%的Al和1.4-2.1重量%的V,而β层包含1.4-2.8重量%的Al,12-18重量%的V和1.5-2.4重量%的Fe。在薄片中,随着冷却速率的增加,铝的浓度增加,钒的浓度最小。在β层中,随着冷却速率的增加,铝的浓度增加,而钒的浓度减少。随着冷却速率从25 K min增至490 K min {sup}(-1),p相的体积分数从10-12%降低至4-5%。当将冷却速度从25 K增加到370 K min {sup}(-1)时,抗拉强度增加了大约7%,而当冷却速度从25 K增加到大约325 K时,面积减小达到了峰值的29%。 min {sup}(-1)。还讨论了冷却速率对组织和性能的影响。

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