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弹性模量对精密玻璃模压成型有限元模拟精度的影响

Effect of Elastic Modulus on the Accuracy of the Finite Element Method in Simulating Precision Glass Molding.

作者信息

Yao Honghui, Lv Keyi, Zhang Jiarong, Wang Han, Xie Xiaozhu, Zhu Xiangyou, Deng Jiannan, Zhuo Shaomu

机构信息

State Key Laboratory of Precision Electronic Manufacturing Technology and Equipment, Guangdong University of Technology, Guangzhou 510006, China.

Union Optech (Zhongshan) Co., Ltd., Zhongshan 528437, China.

出版信息

Materials (Basel). 2019 Nov 18;12(22):3788. doi: 10.3390/ma12223788.

Abstract

Precision glass molding is a revolutionary technology for achieving high precision and efficient manufacturing of glass aspheric lenses. The material properties of glass, including elastic modulus and viscosity, are highly dependent on temperature fluctuations. This paper aims to investigate the effect of elastic modulus on the high-temperature viscoelasticity of glass and the accuracy of the finite element simulation of the molding process for glass aspheric lenses. The high-temperature elastic modulus of D-ZK3L glass is experimentally measured and combined with the glass cylinder compression creep curve to calculate the high temperature viscoelasticity of D-ZK3L. Three groups of viscoelastic parameters are obtained. Based on this, the molding process of the molded aspheric lens is simulated by the nonlinear finite element method (FEM). The surface curves of lenses obtained by simulation and theoretical analyses are consistent. The simulation results obtained at different initial elastic modulus values indicate that the elastic modulus has a great influence on the precision of the FEM-based molding process of glass aspheric lenses.

摘要

精密玻璃模压是一种用于实现高精度、高效率制造玻璃非球面透镜的革命性技术。玻璃的材料特性,包括弹性模量和粘度,高度依赖于温度波动。本文旨在研究弹性模量对玻璃高温粘弹性的影响以及玻璃非球面透镜成型过程有限元模拟的准确性。通过实验测量了D-ZK3L玻璃的高温弹性模量,并结合玻璃圆柱压缩蠕变曲线计算了D-ZK3L的高温粘弹性。获得了三组粘弹性参数。在此基础上,采用非线性有限元方法(FEM)对模压非球面透镜的成型过程进行了模拟。模拟得到的透镜表面曲线与理论分析结果一致。在不同初始弹性模量值下获得的模拟结果表明,弹性模量对基于有限元方法的玻璃非球面透镜成型过程的精度有很大影响。

https://cdn.ncbi.nlm.nih.gov/pmc/blobs/72dc/6887809/483f02199393/materials-12-03788-g001.jpg

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