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固溶處理對TB18鈦合金微觀組織和力學(xué)性能影響規(guī)律研究
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西部超導(dǎo)材料科技股份有限公司

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TG146.23

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秦創(chuàng)原引用高層次創(chuàng)新創(chuàng)業(yè)人才項(xiàng)目(QCYRCXM-2023-003);西安市博士后創(chuàng)新基地資助項(xiàng)目(2023-8)


Effect of solution heat treatment on the microstructure and mechanical properties of TB18 titanium alloy
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    摘要:

    亞穩(wěn)β型TB18鈦合金具有較高的固溶-時效強(qiáng)化效應(yīng)和良好的強(qiáng)度韌性匹配潛力,成為制備先進(jìn)航空構(gòu)件的優(yōu)選材料。通過研究經(jīng)過不同固溶溫度、固溶時間、固溶后緩冷熱處理后TB18鈦合金的微觀組織和力學(xué)性能變化規(guī)律,闡明固溶處理對TB18鈦合金微觀組織-力學(xué)性能間交互作用的影響機(jī)理。結(jié)果表明,經(jīng)過β單相區(qū)固溶和時效處理后,β基體中析出片層和針狀αs相,片層狀αs相有利于提升TB18鈦合金的韌性,片層厚度越大,TB18鈦合金的斷裂韌性越好。固溶溫度過高或固溶保溫時間過長將導(dǎo)致TB18鈦合金β晶粒發(fā)生粗化,使材料強(qiáng)度和塑性下降。將固溶后緩冷冷卻速率由0.25 ℃/min提升至1 ℃/min,經(jīng)過時效處理的TB18鈦合金內(nèi)分布均勻細(xì)密的αs相,抗拉強(qiáng)度提高達(dá)到1343 MPa,延伸率為5.0%。當(dāng)固溶制度為870 ℃/2 h/Air cooling(AC)時,TB18鈦合金可在530 ℃/4 h/AC條件下時效后獲得良好的強(qiáng)韌性匹配,抗拉強(qiáng)度為1315 MPa,屈服強(qiáng)度為1225 MPa,延伸率為8.5%,沖擊韌性為29.2 J/cm2,斷裂韌度值為88.4 MPa.m1/2。

    Abstract:

    The sub-stable β-type TB18 titanium alloy exhibits a significant strengthening effect through solutionizing-ageing and possesses excellent potential for achieving a balanced combination of strength and toughness. As a result, it has emerged as a favoured material for manufacturing high-end aviation components. This work aimed to investigate the impact of solid solution treatment on the microstructure and mechanical properties of TB18 titanium alloy. Specifically, the effects of different solution temperatures, solution times, and slow cooling rates after solutionizing on the alloy"s microstructure and mechanical properties were illustrated. The goal is to understand the mechanism behind the interaction between solution treatment and the microstructure-mechanical properties of TB18 titanium alloy. The results indicated that following the solutionizing and aging treatment within the β single-phase region, lamellar and needle-like αs phases precipitated within the β matrix. The presence of lamellar αs phases contributed to the improvement of the toughness of the TB18 titanium alloy. Furthermore, it was observed that the fracture toughness of the TB18 titanium alloy improved with an increase in the thickness of the lamellar αsphases. Elevated solutionizing temperature or prolonged solid solution holding time can result in the coarsening of β grains in TB18 titanium alloy, leading to a decrease in material strength and plasticity. When increasing the cooling rate from 0.25 ℃/min to 1 ℃/min after solutionizing, the fine αs phases uniformly distributed within the TB18 titanium alloy after aging treatment, and the tensile strength increased to 1343 MPa while the elongation was 5 %. By subjecting the TB18 titanium alloy to a solutionizing regime at a temperature of 870 ℃ for 2 hours, followed by air cooling, it achieved a favorable combination of strength and toughness. Further aging at 530 ℃ for 4 hours, again with air cooling, results in a tensile strength of 1315 MPa, yield strength of 1225 MPa, elongation of 8.5%, impact toughness of 29.2 J/cm2, and fracture toughness value of 88.4 MPa . m1/2.

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劉向宏,趙寧,王濤,康家瑞,楊晶,李少強(qiáng),杜予晅.固溶處理對TB18鈦合金微觀組織和力學(xué)性能影響規(guī)律研究[J].稀有金屬材料與工程,2024,53(11):3101~3110.[Liu Xianghong, Zhao Ning, Wang Tao, Kang Jiarui, Yang Jing, Li Shaoqiang, Du Yuxuan. Effect of solution heat treatment on the microstructure and mechanical properties of TB18 titanium alloy[J]. Rare Metal Materials and Engineering,2024,53(11):3101~3110.]
DOI:10.12442/j. issn.1002-185X.20240027

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  • 收稿日期:2024-01-16
  • 最后修改日期:2024-05-08
  • 錄用日期:2024-05-09
  • 在線發(fā)布日期: 2024-11-20
  • 出版日期: 2024-11-08