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NOVEL CUTTING DEFORMATION MODES ON AXIALLY LOADED CIRCULAR AA6061-T6 EXTRUSIONS FOR SUPERIOR CRASHWORTHINESS PERFORMANCE

机译:轴向载荷圆形AA6061-T6挤出机上的新型切削变形模式

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摘要

The study detailed in this dissertation focuses on the force/displacement and energy absorption performances of circular AA6061-T6 aluminium alloy extrusions subjected to novel cutting deformation modes under both dynamic and quasi-static axial loading conditions. The experimental investigation of this novel cutting deformation mode on the circular AA6061-T6 extrusions was completed utilizing a specially designed cutter with or without the presence of a deflector. Experimental results showed that the cutting deformation mode exhibited higher crush force efficiency of 94.2% and eliminated the high peak crush force associated with the progressive folding or global bending deformation mode. Factors that influence the cutting deformation mode were investigated. Testing results showed that slight difference of the cutter geometries and extrusion diameters had no significant influence on the load/displacement response of the extrusions. An increasing, almost linear, relationship was observed between the steady-state cutting force and the extrusion wall thickness/number of cutter blades. Moreover, controlling the load/displacement response through varying instantaneous extrusions wall thickness along the axis of the specimens was investigated. Experimental results showed a direct relationship between the cutting force and instantaneous wall thickness of the extrusion exists. Additionally, numerical simulations of the axial cutting deformation process employing an Eulerian finite element formulation method and the axial crushing deformation process employing a Lagrangian finite element formulation method were performed. Good predictive capabilities were observed for both configurations. Finally, a theoretical study of steady-state cutting circular extrusion by a cutter with multiple blades with/without a deflector was conducted. It is assumed that the extrusion will deform similar to the experimental observations and dissipate energies through the following plastic or fracture deformations: (1) far-field moving hinge line with the advance of cutter blade; (2) far-field membrane deformation near the intersection zone between the cutter blade and blade shoulder; (3) near blade tip circumferential membrane stretching; (4) continuous chip formation ahead of the cutter blade; and (5) cut petalled sidewalls bending outwards. Then the contribution of friction force between the cutter blade and cut petalled sidewalls is included into the proposed model. A good correlation was found between the theoretical prediction and experimental observations.
机译:本论文详细研究的重点是圆形AA6061-T6铝合金挤压件在动态和准静态轴向载荷条件下承受新型切削变形模式的力/位移和能量吸收性能。使用一种特殊设计的带有或不带有偏转器的刀具对圆形AA6061-T6挤压件上这种新颖的切削变形模式进行了实验研究。实验结果表明,切削变形模式表现出较高的破碎力效率,为94.2%,并且消除了与渐进折叠或整体弯曲变形模式相关的高峰值破碎力。研究了影响切削变形模式的因素。测试结果表明,刀具几何形状和挤压直径的细微差别对挤压的载荷/位移响应没有显着影响。观察到稳态切削力与挤压壁厚度/切割刀片数量之间的关系增加,几乎呈线性关系。此外,研究了通过改变沿试样轴线瞬时挤压壁厚来控制载荷/位移响应的方法。实验结果表明,切削力与挤压件的瞬时壁厚之间存在直接的关系。另外,对采用欧拉有限元公式化方法的轴向切削变形过程和采用拉格朗日有限元公式化方法的轴向破碎变形过程进行了数值模拟。两种配置都具有良好的预测能力。最后,进行了带有/不带偏转器的多刀片切割机稳态切割圆形挤压的理论研究。假定挤压将类似于实验观察到的变形,并通过以下塑性变形或断裂变形消散能量:(1)随着刀片的前进,远场移动铰链线; (2)刀刃与刀肩相交处附近的远场膜变形; (3)叶片尖端附近的周向膜拉伸; (4)在切刀刀片之前连续形成切屑; (5)切成花瓣状的侧壁向外弯曲。然后,在切割刀片和切成瓣的侧壁之间的摩擦力的贡献被包括在所提出的模型中。在理论预测和实验观察之间发现了良好的相关性。

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    Jin Shun Yi;

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  • 年度 2012
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