首页> 外文期刊>Journal of intelligent material systems and structures >Numerical simulation of the behavior of steel T-stubs connected by Fe-based shape memory alloy bolts
【24h】

Numerical simulation of the behavior of steel T-stubs connected by Fe-based shape memory alloy bolts

机译:铁基形状记忆合金螺栓连接的钢制T型螺栓行为的数值模拟

获取原文
获取原文并翻译 | 示例
           

摘要

The article focuses on the numerical simulation of the thermomechanical behavior of steel T-stubs connected by iron-based shape memory alloys bolts. The three-dimensional macroscopic model used in this work was previously developed by the authors considering different thermomechanical properties between austenite and martensite, and coupling between phase transformation and plasticity. The model is implemented in a UMAT code using an implicit time-discrete integration scheme that follows a “multisurface plasticity”-like approach. The numerical results show that the shape memory effect can be used to preload the bolt if the initial length of its shank is less than the total thickness of the flanges. For an initial shank length of 21.38 mm and a total flange thickness of 21.4 mm, the shape memory effect produced average contact forces of 101 N between the bolt head and the flange, and 37 N between the two flanges. The resulting average contact pressures were 210 and 25 MPa, respectively. The average bolt force after preload was approximately 22.6 kN. Subsequent application of 2 mm normal displacements at the top and bottom faces of the upper and lower webs induced local plastic deformation around the flange holes and phase transformation in the bolt. The reversibility of martensitic transformation and the confinement of the plastic deformation in a limited zone around the holes allowed nearly complete shape recovery by heating. The obtained results highlight the advantage of using low-cost iron-based shape memory alloys as alternatives to steel bolts for connecting T-stubs.
机译:本文着重于通过铁基形状记忆合金螺栓连接的T型钢的热力学行为的数值模拟。作者先前考虑到奥氏体和马氏体之间不同的热机械性质,以及相变和可塑性之间的耦合关系,建立了三维宏观模型。该模型使用类似于“多表面可塑性”的方法,使用隐式时间离散积分方案在UMAT代码中实现。数值结果表明,如果杆的初始长度小于法兰的总厚度,则可以利用形状记忆效应对螺栓进行预加载。当初始柄长为21.38 mm,法兰总厚度为21.4 mm时,形状记忆效应在螺栓头和法兰之间产生的平均接触力为101 N,在两个法兰之间的平均接触力为37N。产生的平均接触压力分别为210和25 MPa。预紧后的平均螺栓力约为22.6 kN。随后在上下腹板的顶面和底面施加2mm的法向位移,会引起法兰孔周围的局部塑性变形以及螺栓中的相变。马氏体相变的可逆性和塑性变形在孔周围有限区域内的限制使得通过加热几乎可以完全恢复形状。获得的结果凸显了使用低成本铁基形状记忆合金替代钢螺栓来连接T型短管的优势。

著录项

相似文献

  • 外文文献
  • 中文文献
  • 专利
获取原文

客服邮箱:kefu@zhangqiaokeyan.com

京公网安备:11010802029741号 ICP备案号:京ICP备15016152号-6 六维联合信息科技 (北京) 有限公司©版权所有
  • 客服微信

  • 服务号