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Basic Equations for Mechanics and Kinematics of a Specimen-Machine System in Tensile Test of a Crystal

机译:晶体拉伸试验中标本机系统力学和运动学的基本方程式

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Basic equations (BE) in the title are derived, whose main characteristics are as follows. (1) Plastic deformation of a single-crystal specimen is due to slip on N slip systems, where N is an arbitrary positive integer. (2) The major part of the BE is a set of simultaneous differential equations. By the BE, the tensile stress, the resolved shear stresses, the unloaded specimen length, and crystal orientation factors are related to controlled or measured variables mentioned below and also to deformation-state variables such as slip strain rates on the N active slip systems. (3) The BE are derived for two kinds of tensile test; one is the test in which the extension rate (crosshead speed) is controlled and the load is measured, while the other is the test in which the load is controlled and the crystal specimen length is measured. (4) In the derivation of the BE, the deformation gradient tensor of the crystal is decomposed into the product of its plastic and elastic parts. The decomposition is uniquely defined by using base vectors of material coordinates and those of lattice coordinates. (5) The single-crystal test-piece consists of the cylindrical central part (specimen) and the end parts; the former is assumed to be stressed uniformly and undergo homogeneous elastic plastic deformation, while the latter and the testing machine are assumed to deform elastically. The BE include Young's modulus and Poisson's ratio of the specimen and a combined modulus of the end part-machine system. (6) The BE are necessary for computer simulation of tensile tests of single crystals. Methods for comparison between the results of simulation and those of experiment are discussed in connection with the slip strain and the resolved shear stress on the primary slip system.
机译:推导标题中的基本方程(BE),其主要特征如下。 (1)单晶试样的塑性变形归因于N个滑动系统上的滑动,其中N是任意正整数。 (2)BE的主要部分是一组联立微分方程。通过BE,拉伸应力,分辨的切应力,空载试样长度和晶体取向因子与下文提到的受控或测量变量以及变形状态变量(例如N个主动滑动系统上的滑动应变率)相关。 (3)BE是针对两种拉伸试验得出的;一种是控制伸长率(十字头速度)并测量负载的测试,而另一种是控制负载并测量晶体试样长度的测试。 (4)在BE的推导中,晶体的变形梯度张量分解为其塑性和弹性部分的乘积。通过使用材料坐标的基向量和晶格坐标的基向量来唯一定义分解。 (5)单晶试件由圆柱状的中心部分(试件)和端部组成。假定前者受力均匀并经历均匀的弹性塑性变形,而后者和试验机则假定发生弹性变形。 BE包括试样的杨氏模量和泊松比,以及零件机械系统的组合模量。 (6)BE对于计算机模拟单晶拉伸试验是必需的。结合滑移应变和初级滑移系统上的解析切应力,讨论了模拟结果与实验结果之间的比较方法。

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