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Simulation of Shear Spinning Process for Pressure Vessel Components

机译:压力容器部件剪切纺丝过程的模拟

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Spinning process for the medium- and small-lot production of axisymmetric components has many advantages, such as smaller deformation force, simpler tool-and-die design, and lower investment in equipment, over conventional forming processes. It has been widely used in aerospace, energy and defense industry. This paper presents a 3-D elastoplastic finite element (FE) model for the simulation of the shear spinning process, in order to study deformation behaviour and design proper process parameters for the spinning process. The proposed model has the following characteristics: i) a shell element is used to mesh the contact pairs between the workpiece (a metal blank) and the tool sets (a pressing roller and a mandrel); ii) the offset thickness of the shell element is considered during contact treatment; iii) the movement of the roller and the fixing of the central blank and mandrel are treated as the boundary condition; iv) relative movement between the roller and the blank is treated as a spiral feeding process. FEM simulations for shear spinning with aluminum have been implemented, using a dynamic explicit scheme, on ANSYS/LS-DYNA software. Spinning force, thickness distribution and stress distribution have been studied under various roller feeds and inclined angles of mandrel. The simulation results have provided good confirmation with the experiments.
机译:与常规成型工艺相比,用于中小批量生产轴对称部件的纺丝工艺具有许多优势,例如变形力小,工具和模具设计更简单以及设备投资更低。它已被广泛用于航空航天,能源和国防工业。本文提出了一种用于剪切纺丝过程模拟的3D弹塑性有限元(FE)模型,以研究变形行为并为纺丝过程设计适当的工艺参数。所提出的模型具有以下特征:i)使用壳单元将工件(金属毛坯)和工具组(压辊和心轴)之间的接触对啮合; ii)在接触处理期间考虑壳单元的偏移厚度; iii)将滚子的移动以及中央毛坯和心轴的固定视为边界条件; iv)辊和毛坯之间的相对运动被视为螺旋进给过程。已经在ANSYS / LS-DYNA软件上使用动态显式方案对铝进行的剪切纺丝进行了有限元模拟。研究了在各种辊进给和心轴倾斜角下的纺丝力,厚度分布和应力分布。仿真结果为实验提供了良好的依据。

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