Effect of plastic compressibility on the strain rate intensity factor in compression of a material layer between parallel plates

Q3 Materials Science PNRPU Mechanics Bulletin Pub Date : 2021-12-15 DOI:10.15593/perm.mech/2021.3.16
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Abstract

Solutions of boundary value problems for several rigid plastic models may be singular. In particular, some components of the strain rate tensor and the quadratic invariant of the strain rate tensor may approach infinity in the vicinity of certain surfaces. Some models for predicting the high gradient of material properties near frictional surfaces in metal forming processes are based on such behavior of the velocity field. The coefficient of the leading singular term in a series expansion of the quadratic invariant of the strain rate tensor in the vicinity of frictional interfaces is called the strain rate intensity factor. The magnitude of the second invariant of the strain rate tensor is controlled by this factor that depends on geometric parameters of the boundary value problem and parameters involved in the material model. The present paper deals with the effect of plastic compressibility of the material that obeys the double shearing model on the strain rate intensity factor in compression of a plastic layer between two parallel plates. The system of equations comprising the equilibrium equations and constitutive equations is hyperbolic. It is assumed that the surface of the contact between the plates and the deforming material is an envelope of characteristics. An analytic solution of the boundary value problem is found under plane strain deformation. End effects near the free surface of the layer and its center are ignored. The dependence of the strain rate intensity factor on parameters of the boundary value problem including the parameter that controls plastic compressibility is found. In case of the plastically incompressible material, the solution coincides with the available solution.
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塑性压缩率对平行板间材料层压缩应变率强度因子的影响
几个刚塑性模型的边值问题的解可能是奇异的。特别地,应变速率张量的一些分量和应变速率张量器的二次不变量在某些表面附近可能接近无穷大。一些预测金属成形过程中摩擦表面附近材料性能高梯度的模型是基于速度场的这种行为。摩擦界面附近应变速率张量的二次不变量的级数展开中的前导奇异项的系数称为应变速率强度因子。应变速率张量的第二不变量的大小由该因子控制,该因子取决于边值问题的几何参数和材料模型中涉及的参数。本文研究了服从双剪切模型的材料的塑性压缩性对两个平行板之间塑性层压缩时的应变速率强度因子的影响。包括平衡方程和本构方程的方程组是双曲型的。假设板和变形材料之间的接触表面是特性的包络。给出了平面应变变形下边值问题的解析解。层的自由曲面及其中心附近的末端效果将被忽略。发现了应变速率强度因子对边值问题参数的依赖性,其中包括控制塑性压缩性的参数。在塑性不可压缩材料的情况下,该解与可用解一致。
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来源期刊
PNRPU Mechanics Bulletin
PNRPU Mechanics Bulletin Materials Science-Materials Science (miscellaneous)
CiteScore
1.10
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0.00%
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