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Establishment of a cutting force model and study of the stress–strain distribution in nano-scale copper material orthogonal cutting

机译:纳米铜材料正交切削中切削力模型的建立及应力应变分布研究

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This article focuses on the establishment of a cutting force calculation model in terms of nano-scale orthogonal cutting, and investigates the stress–strain distribution of single-crystal copper that occurs in terms of nano cutting. The cutting force that occurs during the nano-scale cutting of single-crystal copper, and also its changes under different situations, can be found in this study. The molecular dynamics (MD) model was proposed to evaluate the displacement components of the atom in any temporary situation on the nano-scale cutting. The atom and lattice were regarded as the node and element, respectively. The shape function concept of the finite element method (FEM) is used to calculate the equivalent strain of the nodal atom and element. The equivalent stress–strain relationship equation was acquired by nano-scale thin-film tensile simulation in this study, and was used to further calculate the equivalent stress that occurs under the equivalent strain. Subsequently, a stress–strain distribution during nano-scale orthogonal cutting can be acquired.
机译:本文着重于建立基于纳米尺度正交切削的切削力计算模型,并研究了在纳米切削方面发生的单晶铜的应力-应变分布。在这项研究中,可以发现在单晶铜的纳米级切割过程中发生的切割力,以及在不同情况下其变化。提出了分子动力学(MD)模型,以评估在纳米尺度切削中任何临时情况下原子的位移成分。原子和晶格分别被视为节点和元素。有限元方法(FEM)的形状函数概念用于计算节点原子和元素的等效应变。通过本研究的纳米级薄膜拉伸模拟获得了等效应力-应变关系方程,并用于进一步计算等效应变下的等效应力。随后,可以获得纳米级正交切削过程中的应力-应变分布。

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