首页> 外文OA文献 >Modélisation tridimensionnelle Automate Cellulaire - Éléments Finis (CAFE) pour la simulation du développement des structures de grains dans les procédés de soudage GTAW / GMAW
【2h】

Modélisation tridimensionnelle Automate Cellulaire - Éléments Finis (CAFE) pour la simulation du développement des structures de grains dans les procédés de soudage GTAW / GMAW

机译:元胞自动机有限元(CAFE)的三维建模,用于模拟GTAW / GMAW焊接过程中晶粒结构的发展

摘要

Grain structure formation during fusion welding processes has a significant impact on the mechanical strength of the joint. Defects such as hot cracking are also linked to the crystallographic texture formed during the solidification step. Direct simulation of three-dimensional (3D) grain structure at industrial scale for welding processes is rarely modeled. In this work, a 3D coupled Cellular Automaton (CA) – Finite Element (FE) model is proposed to predict the grain structure formation during multiple passes Gas Tungsten Arc Welding (GTAW) and Gas Metal Arc Welding (GMAW). At the macroscopic scale, the FE model solves the mass, energy and momentum conservation equations for the whole system based on an adaptive mesh. For GMAW with metal addition, the FE model is enriched and established in a level set (LS) approach in order to model the evolution of the metal/air interface due to the weld bead development. The FE domain then contains the workpiece and the surrounding air where the weld bead forms. FE computations are coupled with the CA approach used to model the grain structure evolution. A fixed mesh, referred to as CA mesh, is superimposed to the adaptive FE mesh. FE fields are interpolated between the adaptive FE mesh and the fixed CA mesh. A new dynamic allocation/deallocation strategy of a CA grid of cells is then used based on the dynamic activation/deactivation of the elements of the CA mesh. The CA grid is made of a regular lattice of cubic cells superimposed onto the welded domain. At the micro scale, this grid is used in order to simulate the melting and solidification steps at the boundaries between the mushy domain and the liquid pool during the welding process. The temperature evolutions of the cells are computed by interpolation from the CA mesh. Coupling with tabulated transformation paths and phase enthalpy is also implemented, which permits to track the phase amount and latent heat release during the process. In order to master the resolution time and memory cost of the simulations, a management of the FE/CA mesh dimensions and CA cell size is considered for both FE and CA models. The 3D CAFE model is applied to simulate the formation of solidification structures during multiple passes GTAW and GMAW processes on a duplex stainless steel UR 2202. In GTAW, the evolution of the grain structures with respect to the welding process parameters is considered. The normal orientation of the grains with the increase of the heat source velocity is shown. In GMAW, the model is shown to compute the remelting and growth of successively deposited layers. Overall, the predicted structures qualitatively reveal the expected evolutions presented in the literature.
机译:熔焊过程中晶粒结构的形成对接头的机械强度有重大影响。诸如热裂纹的缺陷也与固化步骤中形成的晶体织构有关。在工业规模上对焊接工艺的三维(3D)晶粒结构的直接模拟很少建模。在这项工作中,提出了3D耦合元胞自动机(CA)–有限元(FE)模型,以预测在多次钨极气体保护弧焊(GTAW)和气体金属电弧焊(GMAW)期间的晶粒结构形成。在宏观尺度上,有限元模型基于自适应网格求解整个系统的质量,能量和动量守恒方程。对于添加了金属的GMAW,FE模型以水平集(LS)方法进行了丰富和建立,以便对由于焊缝发展而产生的金属/空气界面的演化进行建模。然后,FE域包含工件和焊缝形成处的周围空气。有限元计算与用于模拟晶粒结构演变的CA方法相结合。将固定的网格(称为CA网格)叠加到自适应FE网格上。在自适应FE网格和固定CA网格之间插入FE字段。然后,基于CA网格元素的动态激活/去激活,使用一种新的CA小区网格动态分配/取消分配策略。 CA网格由叠加在焊接区域上的立方晶胞的规则晶格制成。在微观尺度上,此网格用于模拟焊接过程中糊状区域和液池之间边界处的熔化和固化步骤。通过从CA网格内插来计算单元的温度演变。还实现了与列表化转化路径和相焓的耦合,这允许跟踪过程中的相量和潜热释放。为了掌握仿真的解析时间和内存成本,对于FE和CA模型,都应考虑管理FE / CA网格尺寸和CA单元大小。 3D CAFE模型用于模拟双相不锈钢UR 2202在多次GTAW和GMAW过程中凝固组织的形成。在GTAW中,考虑了晶粒结构相对于焊接工艺参数的演变。示出了随着热源速度的增加晶粒的法向取向。在GMAW中,该模型显示为计算连续沉积的层的重熔和生长。总体而言,预测结构从质上揭示了文献中提出的预期发展。

著录项

  • 作者

    Chen Shijia;

  • 作者单位
  • 年度 2014
  • 总页数
  • 原文格式 PDF
  • 正文语种 en
  • 中图分类

相似文献

  • 外文文献
  • 中文文献
  • 专利

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