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COMPARISON ORTHOGONAL TUBE TURNING DATA VERSUS FINITE ELEMENT SIMULATION USING LS DYNA

机译:使用LS DYNA的正交正交管旋转数据与有限元模拟比较

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The current study focuses on building a 2-Dimensional finite element model to simulate the orthogonal machining process under a dry machining environment in a commercially available FEA solver LS DYNA. One of the key objectives of this thesis is to carefully document the use of LS Dyna to model metal cutting, allowing other researchers to more quickly build on this work. Actual force data is obtained using an Orthogonal Tube Turning apparatus that has been statistically validated to an accuracy of 99+%. The work material used in this study is Aluminum 6061-T6 alloy. The tool material is tool steel, which is modeled as a rigid body. A Plastic Kinematic Material Hardening model is used to define the work material. Chip formation is based on the effective failure plastic strain. A constant coefficient of friction between the tool and work piece is used, obtained from the actual experimental results. The simulation is carried out with the same constant velocity, different rake angles and depth cuts as in the real world experiment. The cutting force and thrust force values obtained for each combination of rake angle and cut depth are validated against the experimental data obtained at Auburn University. The resulting model is considered valid enough to use for sensitivity analysis of the metal cutting process in aluminum alloy 6061-T6 in the university environment. The model is available publicly to any university from a website provided.
机译:目前的研究侧重于建立二维有限元模型,以在市售的FEA求解器LS dyna中模拟干加工环境下的正交加工过程。本文的关键目标之一是仔细记录使用LS Dyna来模拟金属切割,允许其他研究人员更快地建立在这项工作上。使用正交管转动装置获得实际的力数据,该装置已经统计上验证到99 +%的精度。本研究中使用的工作材料是铝6061-T6合金。工具材料是工具钢,其被建模为刚体。塑料运动型材料硬化模型用于定义工作材料。芯片形成基于有效的故障塑性应变。使用工具和工件之间的恒定摩擦系数,从实际的实验结果中获得。仿真以与现实世界实验相同的恒定速度,不同的耙角和深度切割。针对在Auburn大学获得的实验数据验证了针对耙角和切割深度的每个组合获得的切割力和推力值。得到的模型被认为足以用于大学环境中铝合金6061-T6金属切削过程的敏感性分析。该模型可公开提供给提供的网站的任何大学。

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