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A study on the hot workability of wrought NiTi shape memory alloy

机译:变形NiTi形状记忆合金的热加工性能研究

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摘要

The hot workability of a wrought 49.8 Ni-50.2 Ti (at pct) alloy was assessed using the hot compression tests in temperature range of 700-1000 ℃, strain rate of 0.001-1 s~(-1), and the total strain of 0.7. The constitutive equations of Arrhenius-type hyperbolic-sine function was used to describe the flow stress as a function of strain rate and temperature. The preferable regions for hot workability of the alloy were achieved at Z (Zener-Holloman parameter) values of about 10~9-10~(13)corresponding to the peak efficiency of 20-30% in the processing map. However, a narrow area in the processing map including the deformation temperature of 1000 ℃ and strain rate of 1 s~(-1) is inconsistent with the related Z values. A flow instability region was observed at high Z values. Further instability regions were found at low temperature of 700℃ and low strain rates of 0.01-0.001 s~(-1) as well as at high temperature of 1000℃ and high strain rate of 1 s~(-1). The apparent feature of flow curves, the low value of peak efficiency, the similarity between the estimated apparent activation energy of deformation and that of the self diffusion of Ti in Ni, and the stress exponent of higher than 5, suggested that dynamic recovery (DRV) is the dominant restoration phenomenon during the hot working of the alloy.
机译:在700-1000℃的温度范围,应变率为0.001-1 s〜(-1),总应变为700-1000℃的条件下,通过热压试验评估了变形49.8 Ni-50.2 Ti(at pct)合金的热加工性能。 0.7。使用Arrhenius型双曲正弦函数的本构方程来描述流变应力与应变率和温度的函数关系。在Z(Zener-Holloman参数)值约为10〜9-10〜(13)时达到了合金的热加工性的优选区域,对应于加工图中的峰值效率为20-30%。然而,加工图中的一个狭窄区域,包括1000℃的变形温度和1 s〜(-1)的应变速率,与相关的Z值不一致。在高Z值下观察到流动不稳定区域。在700℃的低温,0.01-0.001 s〜(-1)的低应变率以及1000℃的高温和1 s〜(-1)的高应变率下发现了更多的不稳定性区域。流动曲线的表观特征,峰值效率的低值,估计的形变表观活化能与Ni在Ti中自扩散的表观活化能之间的相似性以及高于5的应力指数表明动态恢复(DRV )是合金热加工过程中的主要恢复现象。

著录项

  • 来源
    《Materials Science and Engineering》 |2011年第18期|p.5656-5663|共8页
  • 作者单位

    Center of Excellence for Advanced Materials and Processing (CEAMP), School of Metallurgical and Materials Engineering, Iran University of Science and Technology (IUST), Tehran, Iran;

    Center of Excellence for Advanced Materials and Processing (CEAMP), School of Metallurgical and Materials Engineering, Iran University of Science and Technology (IUST), Tehran, Iran;

    Center of Excellence for Advanced Materials and Processing (CEAMP), School of Metallurgical and Materials Engineering, Iran University of Science and Technology (IUST), Tehran, Iran;

    Department of Materials Science and Engineering, Sharif University of Technology, Tehran, Iran;

    Advanced Materials Research Laboratory (AMRL), K.N. Toosi University of Technology, Tehran, Iran;

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  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    shape memory alloys; thermomechanical processing; light microscopy;

    机译:形状记忆合金;热机械加工;光学显微镜;

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