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Constant-torque thermal cycling and two-way shape memory effect in Ni50.3Ti29.7Hf20 torque tubes

机译:NI50.3TI29.7HF20扭矩管中的恒扭矩热循环和双向形状记忆效果

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Ni-rich Ni50.3Ti29.7Hf20 (at%) high-temperature shape memory alloy tubes were thermomechanically cycled under constant torques. Four loading configurations were examined that consisted of a series of ascending stresses (low-to-high stress from 0 to 500 MPa outer fiber shear stress), a series of descending stresses (high-to-low stress from 500 to 0 MPa), and a series of thermal cycles at a constant stress of 500 MPa, all using an upper cycle temperature (UCT) of 300 degrees C. The last configuration consisted of another series of ascending stress levels using a lesser UCT of 250 degrees C. It was found that the descending series trial stabilized the material response in fewer cycles than the other loading paths. Similarly, cycling at a constant stress of 500 MPa for approximately 100 cycles reached near stabilization (0.05% residual strain accumulation). Transformation shear strains were the highest and most stable when cycled from lower-to-higher stresses (ascending series), reaching 5.78% at 400 MPa. Cycling to lesser UCTs of 250 degrees C (versus 300 degrees C) resulted in the highest two-way shape memory effect (TWSME), measuring over 3.25%. This was attributed to the effect of retained martensite and any transformation dislocations that served to stabilize the TWSME at the lower UCT. Results of this study suggest that different training paths might be used, depending on actuator performance requirements, whether the principal need is to maximize transformation strain, maximize the two-way shear strain, or stabilize the response in fewer cycles.
机译:Ni-Rich Ni50.3Ti29.7HF20(以%)高温形状记忆合金管在恒定的扭矩下热循环。检查了四种装载配置,该加载配置由一系列上升应力(从0至500MPa外纤维剪切应力的低压应力),一系列下降应力(从500至0 MPa的高度应力),并且在500MPa的恒定应力下的一系列热循环,所有使用300摄氏度的上循环温度(UCT)。最后一个配置由250摄氏度的较小uct的另一系列上升应力水平组成。它是发现降序串行试验稳定在比其他装载路径更少的循环中的材料响应。类似地,在稳定的恒定应力下循环循环,达到稳定稳定(残余应变累积附近的100次循环。从低于较高的应力(上升系列)循环时,转化剪切菌株是最高,最稳定的,在400MPa处达到5.78%。循环到较小的UCT为250℃(与300摄氏度)的UCT,导致最高的双向形状记忆效应(TWEME),测量超过3.25%。这归因于保留的马氏体和任何转化脱位的影响,该转化脱位用于稳定下部UCT在较低的UCT下稳定TWSME。该研究的结果表明,可以使用不同的训练路径,这取决于执行器性能要求,是主要需要是最大化转化应变,最大化双向剪切应变,或在更少的循环中稳定响应。

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