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A new Bernoulli-Euler beam model based on a modified couple stress theory

机译:一种基于改进夫妻应力理论的新Bernoulli-euler光束模型

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A new model for the bending of a Bernoulli-Euler beam is developed using a modified couple stress theory. A variational formulation based on the total minimum potential energy principle is employed. The new model contains an internal material length parameter and can capture the size effect, unlike the classical Bernoulli-Euler beam model. The former reduces to the latter when the material length parameter is set to zero. As a direct application of the new model, a cantilever beam problem is solved. It is found that the rigidity of the cantilever beam predicted by the new model is larger than that predicted by the classical beam model. The difference between the deflections predicted by the two models is very significant when the beam thickness is small (below 10 μm), but is diminishing with the increase of the beam thickness. This demonstrates that the new model can indeed predict the size effect at the micron scale observed in bending tests.
机译:使用修改后的夫妇应力理论开发了一种用于伯努利 - 欧拉光束弯曲的新模型。采用基于总最小势能原理的变分制剂。与经典Bernoulli-Euler光束模型不同,新模型包含内部材料长度参数,可以捕获尺寸效果。当材料长度参数设定为零时,前者减少到后者。作为新模型的直接应用,解决了悬臂梁问题。发现新模型预测的悬臂梁的刚度大于经典光束模型预测的刚度。当光束厚度小(10μm以下)时,两种模型预测的偏转之间的差异非常显着,但随着光束厚度的增加而降低。这表明新模型可以确实可以预测在弯曲试验中观察到的微米尺度的尺寸效应。

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