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RESIDUAL STRESS EVALUATION IN MACHINED SURFACES OF COPPER BY MOLECULAR DYNAMIC SIMULATION

机译:分子动力学模拟在铜加工表面残余应力评估中的应用

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Residual stresses in machined surfaces are often regarded as a determining factor of component service life. However, little work has been conducted to investigate the distribution of residual stresses in machined surfaces at nano-scale. In this paper, an MD simulation study is performed to study the residual stresses in machined surfaces of single crystal copper by diamond tools. We adopt a fixed cutting speed of 400m/s, vary depth of cut from 0.5nm to 1.5 nm, and change the tool rake angle from -30° to +30°. The results are then compared and discussed in the following aspects. First, it is found that both tool rake angle and depth of cut affect the morphologies of the formed chips, and as well as the cutting force evolution during machining process. Second, the normal residual stress in the tangential direction is more significant and has a clearer pattern than those in other directions for all the simulation cases. As such, the focus of the study is on this particular stress component. Third, with the increase of depth of cut, the maximum tensile residual stress decreases, and the residual stress becomes compressive at a shorter distance into the machined surface. Also, the use of negative rake angle makes the residual stress overall more tensile when closer to surface, and more compressive as the depth into surface further increases. It is actually consistent with traditional metal machining theory. The use of negative tool rake angle requires a larger thrust force, and this in turn overall makes the residual stress more compressive.
机译:机加工表面上的残余应力通常被认为是组件使用寿命的决定因素。但是,几乎没有工作来研究纳米级加工表面中的残余应力分布。在本文中,进行了MD模拟研究,以研究金刚石工具在单晶铜加工表面上的残余应力。我们采用400m / s的固定切削速度,将切削深度从0.5nm更改为1.5 nm,并将刀具前角从-30°更改为+ 30°。然后,将在以下方面对结果进行比较和讨论。首先,发现刀具前角和切削深度都影响成型切屑的形貌,以及切削力在加工过程中的演变。其次,在所有模拟情况下,切向方向上的法向残余应力比其他方向上的法向残余应力更大,并且模式更清晰。因此,研究的重点是这种特殊的压力成分。第三,随着切削深度的增加,最大拉伸残余应力减小,并且残余应力在进入机加工表面的较短距离内变为压缩状态。同样,使用负前角会使得残余应力在靠近表面时总体上具有更大的拉伸强度,而随着进入表面的深度进一步增大,其残余压缩性也会更高。它实际上与传统的金属加工理论相一致。负工具前角的使用需要更大的推力,这反过来又使残余应力更具压缩性。

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