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Simulation of Distortion due to Machining of Thin-walled Components

机译:薄壁部件加工引起的扭曲模拟

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The distortion of components is strongly related to the residual stress state induced by manufacturing processes like heat treatment, forming or machining. Each process step affects the initial stress state of the following process step. When removing material during machining, the component establishes a new stress equilibrium. Stresses are redistributed causing the component geometry to adjust. Especially for thin-walled components distortion potential is high. Gaining knowledge about the influence of initial loads and the release of distortion during machining processes helps to increase product quality and efficiency. The influences of different initial stress states and different machining parameters on the amount of distortion are examined using both FEM simulations and experiments. A thin-walled T-profile made of aluminum alloy Al 7075-T6 serves as test specimen. A bending process applies a load to initialize a repeatable and defined residual stress state. A groove was machined afterwards into the plastically deformed work piece to trigger stress redistribution and a release of distortion. Different loads with 35 to 45 kN and two different geometries of a groove were used. The amount of initial stress has a significant effect on the distortion potential which could be quantified in the study. Simulations show the same behavior as the experiments and the results match very well especially for a high load.
机译:组分的变形与制造方法如热处理,成形或加工等制造工艺引起的残余应力状态强烈相关。每个过程步骤影响以下过程步骤的初始应力状态。在加工过程中取出材料时,该部件建立了新的应力平衡。重新分配应力导致元件几何形状调节。特别是对于薄壁部件的变形电位很高。获得关于初始载荷的影响和加工过程中的失真释放的知识有助于提高产品质量和效率。使用FEM模拟和实验检查不同初始应力状态和不同加工参数的影响。由铝合金AL 7075-T6制成的薄壁T型材用作试样。弯曲过程适用负载以初始化可重复和定义的残余应力状态。然后将凹槽加工进入塑性变形的工件以触发应力再分布和失真的释放。使用具有35至45kN的不同载荷和两个不同的凹槽几何形状。初始应力的量对在研究中可以量化的变形电位具有显着影响。模拟显示与实验相同的行为,结果非常匹配,特别是对于高负荷。

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