吉林大学学报(理学版) ›› 2023, Vol. 61 ›› Issue (5): 1202-1210.

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形状记忆合金变截面梁的相变力学行为分析

杨静宁, 韦子丰, 卢镜宇, 王鹏   

  1. 兰州理工大学 理学院, 兰州 730050
  • 收稿日期:2022-05-11 出版日期:2023-09-26 发布日期:2023-09-26
  • 通讯作者: 杨静宁 E-mail:307427264@qq.com

Analysis of Phase Transformation Mechanical Behaviour of Shape Memory Alloy Beam with Variable Cross Section

YANG Jingning, WEI Zifeng, LU Jingyu, WANG Peng   

  1. School of Science, Lanzhou University of Technology, Lanzhou 730050, China
  • Received:2022-05-11 Online:2023-09-26 Published:2023-09-26

摘要: 为掌握形状记忆合金变截面梁在弯曲变形过程中的相变力学行为, 基于弯曲变形理论, 结合形状记忆合金的本构关系, 推导出形状记忆合金变截面梁的非线性控制方程, 用分阶段分步骤方法分析变截面梁的相变过程, 研究变截面梁的机械载荷、 拉压不对称系数和变截面系数对中性轴位移、 曲率和相边界的影响, 并与有限元结果进行对比. 结果表明: 变截面系数对相边界和曲率的影响较大, 其值越大, 中性轴位移的最大值越小, 各相边界位置越远离截面边缘; 拉压不对称系数对中性轴位移最大值的影响比载荷和变截面系数更大, 但对最大值出现的截面位置影响最小; 拉压不对称系数对受压侧相边界比受拉侧的影响更大, 拉压不对称系数越大, 截面受压侧越易发生相变.

关键词: 形状记忆合金, 有限元, 相边界, 变截面梁

Abstract: In order to grasp the phase transformation mechanical behaviour of shape memory alloy beam with variable cross section during bending deformation, based on the bending deformation theory, the non-linear control equations of shape memory alloy beam with variable cross section was derived by combined with constitutive relationship of shape memory alloy,  the phase transformation process of variable cross section beam was analysed by using a step-by-step method,  the effects of mechanical load, the tension-compression asymmetry coefficient and the variable cross section coefficients on neutral axis displacement, 
curvature and phase boundary were studied and compared them with the finite element results. The results show that the effect of the variable cross section coefficient on the phase boundary and curvature is more obvious, the larger its value, the smaller the maximum value of neutral axis displacement, and the position of each phase boundary is further away from the section edge. The effects of the tension-compression asymmetry coefficient on the maximum displacement of the neutral axis is greater than that of load and variable cross section coefficient, but it has the smallest effect on the position of the cross section where the maximum value occurs. The tension-compression asymmetry coefficient has a greater effect on the phase boundary of compression side than on the tension side. The larger the tension-compression asymmetry coefficient, the more likely the phase transformation occurs on the compression side of the cross section.

Key words: shape memory alloy, finite element method, phase boundary, variable cross section beam

中图分类号: 

  • O482