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SHAPE RECOVERY CHARACTERISTICS OF PIPES WITH HEAVY WALL THICKNESS MADE BY FERROUS SHAPE MEMORY ALLOY

机译:用毛片形状记忆合金制成的带有重壁厚度的管子的形状恢复特性

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Recently, ferrous shape memory alloys have been developed. Shape recovery strains of ferrous shape memory alloys are smaller than those of Ti-Ni shape memory alloys. Strength, ductility and workability of the former alloy are higher than those of the latter alloy. Therefore, ferrous shape memory alloys are tried to apply for several kinds of pipe joints, as an example, joints of support pipes in the tunnel. One of the other applications, the alloys is used as the material of simulation model to analyze the deformation behavior of the core tube in the fast breeder reactor. In this study, we investigated the shape recovery characteristics of pipes with heavy wall thickness made by ferrous shape memory alloy. Chemical compositions of this alloy are Fe, 28%Mn, 6%Si and 5%Cr. The alloy is melted, and round bars are manufactured by rolling, and pipes are machined from them. Tensile strength is 1100MPa, and yield strength is 320MPa. Ratios of wall thickness to central diameter of pipes are 10, 15, 20 and 25%. We insert tapered punch in the pipe, and expanded it by test machine. Then the circumferential strain of the center diameter of the pipes is 7%. And finally, the heat treatment is conducted at 350 degrees C in order to induce the shape recovery strain, and the pipe diameter decreases by means of austenitic transformation. The results obtained by the experiment are shown as follows. As the value of ratios of wall thickness to center diameter decreases, shape recovery strain increases and seems to approach the shape recovery strain obtained by uni-axial tension test, which was conducted in the past time.
机译:最近,已经开发了亚铁形状记忆合金。含铁形状记忆合金的形状回收菌株小于Ti-Ni形状记忆合金。前合金的强度,延展性和可加工性高于后一种合金。因此,试图涂抹有色亚铁形状记忆合金,以施加几种管接头,作为隧道中的支撑管的关节。其中一个其他应用中,合金用作仿真模型的材料,以分析快速育种反应器中芯管的变形行为。在这项研究中,我们研究了用亚铁形状记忆合金制成的重壁厚的管子的形状回收特性。该合金的化学组​​合物是Fe,28%Mn,6%Si和5%Cr。合金熔化,圆形条通过轧制制造,管道由它们加工。拉伸强度为1100MPa,屈服强度为320MPa。壁厚与管道中径的比率为10,15,20和25%。我们在管道中插入锥形冲压,并通过测试机器扩展。然后管道的中心直径的圆周应变为7%。最后,热处理在350℃下进行,以诱导形状回收菌株,并且通过奥氏体转化,管道直径减小。通过实验获得的结果如下所示。随着壁厚与中心直径的比率的值降低,形状恢复应变增加并且似乎接近通过Uni-轴张力测试获得的形状回收菌,在过去的时间内进行。

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