The effect of secondary dendrite orientation on thickness debit effect of nickel-based single-crystal superalloy with tubular samples

IF 11.2 1区 材料科学 Q1 MATERIALS SCIENCE, MULTIDISCIPLINARY Journal of Materials Science & Technology Pub Date : 2024-08-27 DOI:10.1016/j.jmst.2024.06.056
Jing Liu, Minghan Yu, Shiling Min, Gong Zhang, Zhengguo Xu, Xingang Liu, Li Wang, Jiasheng Dong, Langhong Lou
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Abstract

Secondary dendrite orientation and wall thickness considerably affect the stress rupture life of thin-walled samples. However, the effect of the secondary dendrite orientation on the thickness debit effect of nickel-based single-crystal superalloys has not been thoroughly investigated until now. Owing to geometrical constraints, typical sheet samples cannot reveal the mechanism responsible for the thickness debit effect in turbine blades. This study examined the effect of secondary dendrite orientation on the thickness debit effect of nickel-based single-crystal superalloys at 1100°C/137 MPa in tubular samples. As the wall thickness decreased from 1.5 mm to 0.3 mm, the stress rupture life decreased from approximately 170 h to 64 h, demonstrating a noticeable thickness debit effect. Among the different secondary dendrite orientation areas, the variation in plastic deformation increased from 7% (1.5 mm) to 45% (0.5 mm) and subsequently decreased to 4% (0.3 mm). In thinner samples, the thickness contraction and microstructure evolution were more pronounced in the [100] areas than that in the [110] and [210] areas. The theoretical calculation quantitatively indicated that as the effective stress increased, the contribution of plastic deformation (45%) was slightly lower than that of oxidation (55%) in 0.3 mm samples; nevertheless, plastic deformation played a prominent role in 0.5, 0.8, 1, and 1.5 mm samples and increased from 61% (0.5 mm samples) to 85% (1.5 mm samples). In thinner samples, increased plastic deformation in the secondary dendrite orientation of the [100] areas and oxidation increased the effective stress, resulting in a shorter rupture life. These findings are conducive to the structural optimization and performance improvement of turbine blades.

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二次枝晶取向对镍基单晶超级合金管状样品厚度扣减效应的影响
二次枝晶取向和壁厚对薄壁样品的应力断裂寿命有很大影响。然而,二次枝晶取向对镍基单晶超合金厚度扣减效应的影响迄今尚未得到深入研究。由于几何形状的限制,典型的薄片样品无法揭示涡轮叶片厚度扣减效应的机理。本研究考察了管状样品在 1100°C/137 MPa 下二次枝晶取向对镍基单晶超合金厚度折减效应的影响。当壁厚从 1.5 毫米减小到 0.3 毫米时,应力断裂寿命从大约 170 小时减小到 64 小时,显示出明显的厚度扣减效应。在不同的次生枝晶取向区域中,塑性变形的变化从 7%(1.5 毫米)增加到 45%(0.5 毫米),随后又减少到 4%(0.3 毫米)。在较薄的样品中,[100]区域的厚度收缩和微观结构演变比[110]和[210]区域更为明显。理论计算的定量结果表明,随着有效应力的增加,在 0.3 毫米的样品中,塑性变形的贡献率(45%)略低于氧化作用(55%);然而,在 0.5、0.8、1 和 1.5 毫米的样品中,塑性变形的作用非常突出,从 61%(0.5 毫米样品)增加到 85%(1.5 毫米样品)。在较薄的样品中,[100]区域次生枝晶取向的塑性变形和氧化增加了有效应力,导致断裂寿命缩短。这些发现有利于涡轮叶片的结构优化和性能改进。
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来源期刊
Journal of Materials Science & Technology
Journal of Materials Science & Technology 工程技术-材料科学:综合
CiteScore
20.00
自引率
11.00%
发文量
995
审稿时长
13 days
期刊介绍: Journal of Materials Science & Technology strives to promote global collaboration in the field of materials science and technology. It primarily publishes original research papers, invited review articles, letters, research notes, and summaries of scientific achievements. The journal covers a wide range of materials science and technology topics, including metallic materials, inorganic nonmetallic materials, and composite materials.
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