-1~10 s-1條件下的高溫變形行為。研究結(jié)果表明合金的流變應(yīng)力對變形溫度和速率都有強(qiáng)敏感性,流變軟化過程也隨變形參數(shù)的改變呈現(xiàn)出不同的模式。通過經(jīng)典的動力學(xué)模型,建立了合金高溫變形的本構(gòu)關(guān)系和激活能分布圖,進(jìn)一步基于動態(tài)材料模型構(gòu)建了合金的熱加工圖并實(shí)現(xiàn)了對不同加工區(qū)間變形機(jī)制的識別。合金在低溫區(qū)(700 ℃)和高速率區(qū)( 1 s-1)均展現(xiàn)出失穩(wěn)變形的特征,包括外部開裂、絕熱剪切帶、局部流變等機(jī)制,在實(shí)際加工中應(yīng)對這些加工區(qū)域進(jìn)行規(guī)避。合金在800 ℃及中低速率( 0.1 s-1)變形下的主導(dǎo)機(jī)制為α相的動態(tài)析出,在中高溫(900 ℃-1100 ℃)及中低速率變形下的主導(dǎo)機(jī)制為動態(tài)回復(fù)與動態(tài)再結(jié)晶的結(jié)合。此外,合金在高溫較低應(yīng)變速率(1100 ℃/0.01 s-1)條件的變形中表現(xiàn)出大范圍動態(tài)再結(jié)晶的行為特點(diǎn)并伴隨穩(wěn)定的流變軟化,因此此條件附近的參數(shù)區(qū)間被認(rèn)定為該合金的最優(yōu)加工窗口,應(yīng)在實(shí)際加工中給予優(yōu)先考慮。"/>

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鑄態(tài)粗晶Ti-5553鈦合金高溫變形行為與機(jī)理研究
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作者單位:

1.長安大學(xué) 材料科學(xué)與工程學(xué)院;2.懷卡托大學(xué) 工程學(xué)院

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基金項(xiàng)目:

New Zealand Ministry of Business, Innovation and Employment (UOWX1402)


Hot Deformation Behavior and Underlying Mechanism of As-cast Ti-5553 Alloy with Coarse Grain
Author:
Affiliation:

1.School of Material Science and Engineering,Chang’an University,Xi’an;2.School of Engineering,University of Waikato,Hamilton ,New Zealand

Fund Project:

New Zealand Ministry of Business, Innovation and Employment (UOWX1402)

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    摘要:

    本文借助Gleeble-3800熱模擬試驗(yàn)機(jī)系統(tǒng)地研究了鑄態(tài)粗晶Ti-5553合金在溫度700 ℃~1100 ℃、應(yīng)變速率為0.001 s-1~10 s-1條件下的高溫變形行為。研究結(jié)果表明合金的流變應(yīng)力對變形溫度和速率都有強(qiáng)敏感性,流變軟化過程也隨變形參數(shù)的改變呈現(xiàn)出不同的模式。通過經(jīng)典的動力學(xué)模型,建立了合金高溫變形的本構(gòu)關(guān)系和激活能分布圖,進(jìn)一步基于動態(tài)材料模型構(gòu)建了合金的熱加工圖并實(shí)現(xiàn)了對不同加工區(qū)間變形機(jī)制的識別。合金在低溫區(qū)(700 ℃)和高速率區(qū)( 1 s-1)均展現(xiàn)出失穩(wěn)變形的特征,包括外部開裂、絕熱剪切帶、局部流變等機(jī)制,在實(shí)際加工中應(yīng)對這些加工區(qū)域進(jìn)行規(guī)避。合金在800 ℃及中低速率( 0.1 s-1)變形下的主導(dǎo)機(jī)制為α相的動態(tài)析出,在中高溫(900 ℃-1100 ℃)及中低速率變形下的主導(dǎo)機(jī)制為動態(tài)回復(fù)與動態(tài)再結(jié)晶的結(jié)合。此外,合金在高溫較低應(yīng)變速率(1100 ℃/0.01 s-1)條件的變形中表現(xiàn)出大范圍動態(tài)再結(jié)晶的行為特點(diǎn)并伴隨穩(wěn)定的流變軟化,因此此條件附近的參數(shù)區(qū)間被認(rèn)定為該合金的最優(yōu)加工窗口,應(yīng)在實(shí)際加工中給予優(yōu)先考慮。

    Abstract:

    The hot deformation behavior of as-cast Ti-5553 (Ti-5Al-5Mo-5V-3Cr) alloy with coarse grain was investigated at the temperature range of 700 °C-1100 °C and strain rate range of 0.001 s-1-10 s-1 by Gleeble-3800 thermal physical simulator. The results show that the flow stress is sensitive to both temperature and strain rate, and the flow curves display various softening modes at different conditions. The activation energy map and constitutive relationship are constructed for the alloy, and the average deformation activation energy is calculated as 447.2 kJ/mol. The hot processing map is successfully established based on the dynamic materials model with the identification of underlying mechanisms at various processing regions. Two peak domains are identified in the hot processing map, which are: 800 °C-975 °C/0.001 s-1-0.01 s-1 and 1000 °C-1100 °C /0.01 s-1-0.1 s-1, and the flow instability region locates at the region with strain rate higher than 1 s-1. External cracking, adiabatic shear banding and/or flow localization are observed at low-temperature deformation and in the flow instability region, and these conditions should be avoided for actual processing. The mechanism at the peak efficiency domains are DRV or the combination of DRV and DRX, among which the region with the occurrence of extensive DRX is recommended as the optimal processing window for the alloy at high temperature about 1100 °C and medium-low strain rate about 0.01 s-1.

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趙秦陽,陳永楠,徐義庫,Leandro Bolzoni, Fei Yang.鑄態(tài)粗晶Ti-5553鈦合金高溫變形行為與機(jī)理研究[J].稀有金屬材料與工程,2020,49(11):3653~3661.[Qinyang Zhao, Yongnan Chen, Yiku Xu, Leandro Bolzoni, Fei Yang. Hot Deformation Behavior and Underlying Mechanism of As-cast Ti-5553 Alloy with Coarse Grain[J]. Rare Metal Materials and Engineering,2020,49(11):3653~3661.]
DOI:10.12442/j. issn.1002-185X.20200136

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  • 收稿日期:2020-02-29
  • 最后修改日期:2020-05-09
  • 錄用日期:2020-05-27
  • 在線發(fā)布日期: 2020-12-09
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