材料科学
造型(装饰)
涂层
分层(地质)
复合材料
有限元法
白光干涉法
扫描电子显微镜
耐久性
过程(计算)
光学
干涉测量
计算机科学
结构工程
物理
古生物学
工程类
操作系统
生物
构造学
俯冲
作者
Chong Chen,Marcel Friedrichs,Cheng Jiang,Liang Wang,Min Dang,Tim Grunwald,Thomas Bergs,Yongliang Li
出处
期刊:Coatings
[MDPI AG]
日期:2023-08-16
卷期号:13 (8): 1438-1438
标识
DOI:10.3390/coatings13081438
摘要
Precision glass molding (PGM) is an efficient process used for manufacturing high-precision micro lenses with aspheric surfaces, which are key components in high-resolution systems, such as endoscopes. In PGM, production costs are significantly influenced by the lifetimes of elaborately manufactured molding tools. Protective coatings are applied to the molding tools to withstand severe cyclic thermochemical and thermomechanical loads in the PGM process and, in this way, extend the life of the molding tools. This research focuses on a new method which combines metallographic analysis and finite element method (FEM) simulation to study the interaction of three protective coatings—diamond-like carbon (DLC), PtIr and CrAlN—each in contact with the high Abbe number glass material S-FPM3 in a precision glass molding process. Molding tools are analyzed metallographically using light microscopy, white light interferometry, scanning electron microscopy (SEM), and energy dispersive X-ray spectroscopy (EDX). The results show that the DLC coating improved process durability more than the PtIr and CrAlN coatings, in which the phenomenon of coating delamination and glass adhesion can be observed. To identify potential explanations for the metrological results, FEM is applied to inspect the stress state and stress distribution in the molding tools during the molding process.
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