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Properties of a Ni_(19.5)Pd_(30)Ti_(50.5) high-temperature shape memory alloy in tension and compression

机译:Ni_(19.5)PD_(30)TI_(50.5)高温形状记忆合金的张力和压缩的性质

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Potential applications involving high-temperature shape memory alloys have been growing in recent years. Even in those cases where promising new alloys have been identified, the knowledge base for such materials contains gaps crucial to their maturation and implementation in actuator and other applications. We begin to address this issue by characterizing the mechanical behavior of a Ni_(19.5)Pd_(30)Ti_(50.5) high-temperature shape memory alloy in both uniaxial tension and compression at various temperatures. Differences in the isothermal uniaxial deformation behavior were most notable at test temperatures below the martensite finish temperature. The elastic modulus of the material was very dependent on strain level; therefore, dynamic Young's Modulus was determined as a function of temperature by an impulse excitation technique. More importantly, the performance of a thermally activated actuator material is dependent on the work output of the alloy. Consequently, the strain-temperature response of the Ni_(19.5)Pd_(30)Ti_(50.5) alloy under various loads was determined in both tension and compression and the specific work output calculated and compared in both loading conditions. It was found that the transformation strain and thus, the specific work output were similar regardless of the loading condition. Also, in both tension and compression, the strain-temperature loops determined under constant load conditions did not close due to the fact that the transformation strain during cooling was always larger than the transformation strain during heating. This was apparently the result of permanent plastic deformation of the martensite phase with each cycle. Consequently, before this alloy can be used under cyclic actuation conditions, modification of the microstructure or composition would be required to increase the resistance of the alloy to plastic deformation by slip.
机译:涉及高温形状记忆合金的潜在应用近年来越来越大。即使在已经确定了有希望的新合金的情况下,这种材料的知识库也包含在执行器和其他应用中的成熟和实施至关重要的空白。我们开始通过表征Ni_(19.5)PD_(30)Ti_(50.5)高温形状记忆合金的单轴张力和各种温度压缩的机械特性来解决这个问题。等温单轴变形行为的差异在低于马氏体净化温度的测试温度下最显着。材料的弹性模量非常依赖于应变水平;因此,通过脉冲激励技术确定动态杨氏模量作为温度的函数。更重要的是,热活化的致动器材料的性能取决于合金的工作输出。因此,在张力和压缩下确定各种负载下的Ni_(19.5)PD_(30)Ti_(50.5)合金的应变 - 温度响应,并且在载荷条件下计算和比较并比较的特定工作输出。结果发现,无论加载条件如何,变换应变为类似的工作输出。而且,在张力和压缩中,由于冷却期间的变换应变总是大于加热期间的转化应变而确定在恒定载荷条件下确定的应变温度并未关闭。这显然是与每个循环的马氏体相的永久塑性变形的结果。因此,在该合金可以在循环致动条件下使用之前,需要改变微观结构或组合物以通过滑动增加合金与塑性变形的电阻。

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