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A comparative study of the porous TiNi shape-memory alloys fabricated by three different processes

机译:三种不同工艺制备的多孔TiNi形状记忆合金的比较研究

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摘要

Porous TiNi shape-memory alloys (SMAs) have been successfully fabricated by three different processes, including capsule-free hot isostatic pressing (CF-HIP), conventional sintering (CS), and self-propagating high-temperature synthesis (SHS). A systematically comparative investigation was made on their phase transformation behaviors, mechanical properties, superelasticity, and damping performance. The results show that the CF-HIP process is the best among these methods. By controlling the processing parameters of CF-HIP, the porous TINi SMA shows the expected pore characteristics, such as a round pore shape and a homogeneous pore distribution. The porous TiNi SMA produced by CF-HIP also exhibits good properties, such as superior superelasticity (up to 4 pct recoverable strain), a flat stress yield plateau, and a high compressive strength, similar to those of the dense TiNi SMAs. In addition, the porous TiNi SMA produced by CF-HIP has a much smaller strain hysteresis, superior damping performance to a porous TiNi SMAs produced with CS, and SHS.
机译:多孔TiNi形状记忆合金(SMAs)已通过三种不同的方法成功制造,包括无胶囊热等静压(CF-HIP),常规烧结(CS)和自蔓延高温合成(SHS)。对它们的相变行为,力学性能,超弹性和阻尼性能进行了系统的比较研究。结果表明,CF-HIP工艺是这些方法中最好的。通过控制CF-HIP的加工参数,多孔TINi SMA表现出预期的孔特征,例如圆孔形状和均匀的孔分布。由CF-HIP生产的多孔TiNi SMA还具有良好的性能,例如,与致密的TiNi SMA相似,具有超强的超弹性(可恢复应变高达4 pct),平坦的应力屈服平稳期和较高的抗压强度。另外,由CF-HIP生产的多孔TiNi SMA的应变滞后小得多,其阻尼性能优于由CS和SHS生产的多孔TiNi SMA。

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  • 来源
    《Metallurgical and Materials Transactions A》 |2006年第3期|755-761|共7页
  • 作者单位

    the College of Mechanical Engineering South China University of Technology 510640 Guangzhou People’s Republic of China;

    the College of Mechanical Engineering South China University of Technology 510640 Guangzhou People’s Republic of China;

    the College of Mechanical Engineering South China University of Technology 510640 Guangzhou People’s Republic of China;

    the College of Mechanical Engineering South China University of Technology 510640 Guangzhou People’s Republic of China;

    the Department of Physics ampamp Materials Science City University of Hong Kong Kowloon Hong Kong;

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  • 正文语种 eng
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