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Simulation method for precision bonding structure with micron scale adhesive layer

机译:微米刻度粘合层精密粘接结构仿真方法

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In the manufacturing process of precision instruments, many parts are connected by adhesive. Because of the high manufacturing accuracy of precision instrument, the design value of the bonding gap is generally in the scale of microns. This thin gap in the instrument may lead to nonlinear displacement and deformation of instrument under the condition of multi physical field when the precision instrument is working, thus affecting the accuracy and stability of instrument. In this paper, a simulation method for bonding structure with micron scale adhesive layer is established. Through a case of simplified model and a case of mesh method of a precision instrument adhesive structure, the finite element analysis is carried out. The basic principle of geometric model simplification and mesh method in the simulation is obtained. In order to ensure the accuracy of the three-dimensional stress analysis, the adhesive layer with a local thickness which is less than 1/10 of the average thickness is simplified as a hole. The length-width ratio of the meshes should be controlled about 1:10. For stress analysis, second order hexahedron element should be used and the element angle should between 10 degrees to 170 degrees. Under these conditions, the simulation of the bonding structure with micron scale adhesive layer can be carried out with high accuracy and high efficiency.
机译:在精密仪器的制造过程中,许多部件通过粘合剂连接。因为精密仪器的高制造精度的,的接合间隙设计值一般在微米的规模。在仪器该薄间隙可能导致非线性位移和仪器的变形多物理场的条件下,当精密仪器工作,从而影响仪器的精度和稳定性。在本文中,建立用于与微米级粘合剂层接合结构的模拟方法。通过简化模型和精密仪器的粘合结构的网格方法的情况下的情况下,有限元分析中进行。获得几何模型简化和在模拟网格方法的基本原理。为了确保三维应力分析的精度,具有局部厚度的粘合剂层,其是小于1/10的平均厚度的简化为一个孔。网眼的长度与宽度的比例应控制约1:10。应力分析,二阶六面体元件应使用10度至170度之间的角度元件应。在这些条件下,具有微米尺度的粘合剂层的粘合结构的仿真能够以高精度和高效率地进行。

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