-1和溫度范圍為1050~1100 ℃+應(yīng)變速率為0.01~0.1 s-1,平均功率耗散率大于36%。借助EBSD顯微組織分析,確定了熱變形的軟化機制隨變形量的增大由動態(tài)回復(fù)向動態(tài)再結(jié)晶轉(zhuǎn)變。"/>

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NiCoFeCrAl系高熵合金熱加工圖不同失穩(wěn)判據(jù)比較
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Natural Science Foundation Special (No. 22-315-6-04).)


Comparison of Different Instability Criteria for Processing Maps of NiCoFeCrAl High Entropy Alloy
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Natural Science Foundation Special (22-315-6-04)

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    摘要:

    采用Gleeble-3800熱模擬試驗機對NiCoFeCrAl系高熵合金進(jìn)行單道次熱壓縮實驗研究,根據(jù)峰值應(yīng)力構(gòu)建了NiCoFeCrAl系高熵合金Arrhenius本構(gòu)關(guān)系模型,運用Prasad、Murty、Gegel和Malas四種失穩(wěn)準(zhǔn)則,構(gòu)建了不同失穩(wěn)判據(jù)下的DMM熱加工圖,并對不同失穩(wěn)判據(jù)在該合金熱變形過程中的適用范圍進(jìn)行了分析與比較,確定了該合金的最佳熱加工區(qū)間為溫度為980~1010 ℃+應(yīng)變速率為0.01~0.001 s-1和溫度范圍為1050~1100 ℃+應(yīng)變速率為0.01~0.1 s-1,平均功率耗散率大于36%。借助EBSD顯微組織分析,確定了熱變形的軟化機制隨變形量的增大由動態(tài)回復(fù)向動態(tài)再結(jié)晶轉(zhuǎn)變。

    Abstract:

    The single-pass thermal compression experiments were conducted on NiCoFeCrAl high entropy alloy by Gleeble-3800 thermal simulation tester. The Arrhenius constitutive model was established based on the peak stresses. With four instability criteria (Prasad, Murty, Gegel, and Malas), different heat processing maps of dynamic material model were established. The applicable ranges of the instability criteria for the alloys in the heat deformation process were analyzed and compared. Results show that the optimal heat processing ranges of the alloys are the temperature range of 980–1010 °C+strain rate of 0.01–0.001 s-1 and the temperature range of 1050–1100 °C+strain rate of 0.01–0.1 s-1. The average power dissipation rate is greater than 36%. Through EBSD microstructure analysis, the softening mechanism of thermal deformation is changed from dynamic recovery to dynamic recrystallization with increasing the deformation amount.

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張允勝,蔣學(xué)禹,周舸,張浩宇,張思倩,車欣,陳立佳,曹雪.NiCoFeCrAl系高熵合金熱加工圖不同失穩(wěn)判據(jù)比較[J].稀有金屬材料與工程,2024,53(1):38~46.[Zhang Yunsheng, Jiang Xueyu, Zhou Ge, Zhang Haoyu, Zhang Siqian, Che Xin, Chen Lijia, Cao Xue. Comparison of Different Instability Criteria for Processing Maps of NiCoFeCrAl High Entropy Alloy[J]. Rare Metal Materials and Engineering,2024,53(1):38~46.]
DOI:10.12442/j. issn.1002-185X. E20230037

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  • 收稿日期:2023-09-18
  • 最后修改日期:2023-11-21
  • 錄用日期:2023-11-30
  • 在線發(fā)布日期: 2024-01-25
  • 出版日期: 2024-01-24