AbstractThe process of plastic flow localization in a composite material consisting of welded steel and copper plates under shear s'/> Numerical Simulation of Adiabatic Shear-Band Formation in Composites
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Numerical Simulation of Adiabatic Shear-Band Formation in Composites

机译:复合材料中绝热剪切带形成的数值模拟

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AbstractThe process of plastic flow localization in a composite material consisting of welded steel and copper plates under shear strain is considered. The mathematical model of this physical process is formulated. A new numerical algorithm based on the Courant–Isaacson–Rees scheme is proposed. The algorithm is verified using three test problems. The algorithm efficiency and performance are proved by the test simulations. The proposed algorithm is used for numerical simulation of plastic strain localization on composite materials. The influence of boundary conditions, the initial plastic strain rate, and the width of the materials forming the composite bar on the localization process is studied. It is demonstrated that at the initial stage, the shear velocity for the material layers varies. Theoretical estimates of the oscillation frequency and period are proposed; the calculations using these estimates agree completely with the numerical experiments. It is established that the deformation is localized in the copper part of the composite. One or two localization regions situated at a typical distance from the boundaries are formed, depending on the width of the steel and copper parts, as well as the initial plastic strain rate and the chosen boundary conditions. The dependence of this distance on the initial plastic strain rate is demonstrated and corresponding estimates for boundary conditions of two types are obtained. It is established that in the case of two localization regions, the temperature and deformation in one of them increase much faster than in the other, while at the initial stage these quantities are nearly equal in both regions.]]>
机译:<![CDATA [<摘要ID =“abs1”语言=“en”> <标题>抽象 ara>剪切应变下由焊接钢和铜板组成的复合材料中的塑性流定位过程经过考虑的。制定了该物理过程的数学模型。提出了一种基于Courant-Isaacson-Rees计划的新数值算法。使用三个测试问题验证该算法。测试模拟证明了算法效率和性能。所提出的算法用于复合材料塑性应变定位的数值模拟。研究了边界条件,初始塑料应变速率和在局部化工艺上形成复合杆的材料宽度的影响。据证明,在初始阶段,材料层的剪切速度变化。提出了振荡频率和期间的理论估计;使用这些估计的计算完全与数值实验完全同意。建立了变形,在复合材料的铜部分中定位。形成一个或两个定位区域,其位于距边界的典型距离,取决于钢和铜部件的宽度,以及初始塑料应变速率和所选择的边界条件。对初始塑料应变速率的该距离的依赖性被证明,获得了两种类型的边界条件的相应估计。建立在两个定位区域的情况下,它们之一的温度和变形的增加比另一个更快,而在初始阶段,这些数量在两个区域中几乎相等。 ]]>

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