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Load and Boundary Condition Calibration Using Full-field Strain Measurement

机译:校准使用加载和边界条件细致的应变测量

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For critical load bearing structures, it is often necessary to experimentally determine the load distribution on the structure so that accurate finite element models can be developed for stress and fatigue life predictions. An inverse problem approach is presented here for computing or calibrating the loads and boundary conditions acting on a structure. This enables the creation of more accurate finite element models, especially for structures that have complicated load distribution and compliant boundary conditions. The method presented here involves minimizing the least square error between the strains computed using the finite element model and the strains and displacements obtained experimentally. The nodal loads and the compliance at fixed boundaries are treated as the variables in the optimization problem. The compliance is modeled as springs attached at the nodes that are on the boundary where the structure is restrained. The method is verified by computing the loads and boundary conditions when displacements, maximum shear strain or both are available at large number of points on the surface of the structure. The experimental data set was generated using the luminescent photoelastic coating (LPC) technique.
机译:为关键的承重结构,它通常是需要实验确定负载分布结构,以便准确有限元模型可以开发压力和疲劳寿命预测。这里介绍的方法是计算或校准载荷和边界条件作用于结构。更精确的有限元模型,特别是对于结构复杂载荷分布和兼容的边界条件。之间的最小平方误差最小化菌株采用有限元模型计算压力和位移实验。在固定边界被视为合规变量的优化问题。合规是建模为弹簧连接的边界上的节点结构是克制。通过计算载荷和边界条件当位移、最大剪切应变或两者兼而有之在大量的点可以吗的表面结构。设置生成使用发光光弹性贴片(LPC)技术。

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