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單晶鎳基高溫合金超高溫蠕變期間的變形機制
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1.沈陽工業(yè)大學 材料科學與工程學院,遼寧 沈陽 110870;2.貴州工程應(yīng)用技術(shù)學院 機械工程學院,貴州 畢節(jié) 551700

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Science and Technology Foundation Project of Guizhou province (No.qiankehejichu[2020]1Y198, No.qiankehezhicheng[2019]2870), Projects of Liaoning Natural Science Foundation(No.2020-Ms-212), Science and Technology Project of Bijie City(No.bikehezi[2019]2), Characteristic Key Laboratory of University of Guizhou province (No.qianjiaoheKYzi[2019]053)


Deformation Mechanism of Single-Crystal Nickel-based Superalloys During Ultra-High-Temperature Creep
Author:
Affiliation:

1.School of Materials Science and Engineering, Shenyang University of Technology, Shenyang 110870, China;2.School of Mechanical Engineering, Guizhou University of Engineering Science, Bijie 551700, China

Fund Project:

Science and Technology Foundation Project of Guizhou Province (qiankehejichu[2020]1Y198, qiankehezhicheng[2019]2870); Projects of Liaoning Natural Science Foundation (2020-Ms-212); Science and Technology Project of Bijie City (bikehezi[2019]2); Characteristic Key Laboratory of University of Guizhou Province (qianjiaoheKYzi[2019]053)

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    摘要:

    通過蠕變性能測試及組織形貌觀察,研究了6%Re-5%Ru(質(zhì)量分數(shù))單晶鎳基高溫合金的超高溫蠕變行為和變形機制。結(jié)果表明,該合金在1160 ℃/120 MPa條件下的蠕變壽命為206 h。穩(wěn)態(tài)蠕變期間,位錯在基體中滑移和攀移越過筏狀γ′相是合金的變形特征,基體中溶解的高濃度難熔元素可增加位錯運動阻力。蠕變后期,切入筏狀γ′相的位錯可由{111}面交滑移至{100}面,形成Kear-Wilsdorf(K-W)位錯鎖,高數(shù)量K-W位錯鎖可抑制位錯滑移和交滑移,是合金具有較好蠕變抗力和較低應(yīng)變速率的原因。交滑移可扭曲筏狀γ′相,并在兩相界面發(fā)生裂紋萌生與擴展,直至斷裂,這是合金蠕變后期的變形與損傷特征。其中,溶入γ′相的Ru原子可替換Al原子,合金中Ru與Re、W的相互作用使較多的Re、W原子溶入γ′相,延緩元素擴散速率,阻礙位錯運動,使合金在超高溫蠕變期間仍保留高數(shù)量K-W位錯鎖及良好蠕變抗力。

    Abstract:

    The creep behavior and deformation mechanism of the nickel-based single-crystal superalloy containing 6wt% Re and 5wt% Ru at ultra-high temperatures were studied via microstructure observation and creep property analysis. The results show that under the condition of 1160 °C/120 MPa, the Ni-based superalloy has a creep life of 206 h. During the steady state creep period, the deformation mechanism is dominated by dislocation glide in the γ matrix and dislocation climb over the γ′ raft phases. The refractory elements dissolved in the γ matrix can improve the resistance to dislocation movement. In the late creep stage, the cross-slip occurs from {111} plane to the {100} plane with the dislocations used for shearing the γ′ phase, and then the Kear-Wilsdorf (K-W) dislocation locks are formed. A large number of K-W dislocation locks can inhibit the dislocation glide and cross-slip, thus improving the creep resistance and reducing the strain rate for Ni-based superalloys. In the late creep stage, the cross-slip dislocations are initiated to twist the γ′/γ raft phases, and the crack initiation and propagation occur in the γ′/γ interfaces until fracture. These phenomena are the damage and fracture features of the Ni-based superalloys. The Ru atoms dissolved in the γ′ phase can replace the Al atoms. When Ru, Re, and W atoms react in the Ni-based superalloy, more Re and W atoms can be dissolved into the γ′ phase, which reduces the element diffusion rate and hinders the dislocation movement, thereby retaining more K-W dislocation locks and excellent creep resistance of Ni-based superalloys at ultra-high temperatures.

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趙國旗,田素貴,劉麗榮,田寧,晉芳偉.單晶鎳基高溫合金超高溫蠕變期間的變形機制[J].稀有金屬材料與工程,2022,51(1):52~59.[Zhao Guoqi, Tian Sugui, Liu Lirong, Tian Ning, Jin Fangwei. Deformation Mechanism of Single-Crystal Nickel-based Superalloys During Ultra-High-Temperature Creep[J]. Rare Metal Materials and Engineering,2022,51(1):52~59.]
DOI:10.12442/j. issn.1002-185X. E20210008

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  • 收稿日期:2021-04-09
  • 最后修改日期:2021-06-20
  • 錄用日期:2021-07-09
  • 在線發(fā)布日期: 2022-02-04
  • 出版日期: 2022-01-28