4.7 Article

Surface integrity analysis of ultra-thin glass molding process

Journal

CERAMICS INTERNATIONAL
Volume 47, Issue 21, Pages 30584-30597

Publisher

ELSEVIER SCI LTD
DOI: 10.1016/j.ceramint.2021.07.236

Keywords

Curved surface; Ultra-thin glass; Glass molding process; Surface integrity

Funding

  1. National Natural Science Foundation of China [51975228]
  2. Natural Science Foundation of Guangdong Province [2020A1515010638]
  3. Local Innova-tive and Research Team Project of Guangdong Pearl River Talents Pro-gram [2017BT01G167]
  4. Guangdong Regular Institutions of characteristic innova-tion project [2017KTSCX176]

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This study comprehensively investigates the surface integrity of curved ultra-thin glass and analyzes the effects of UTGMP parameters on breakage rate and densities of microbubbles and water ripples. Optimal molding temperature and pressure conditions are determined based on a comprehensive analysis, leading to significant improvements in the surface integrity of high-precision glass molding processes for curved ultra-thin glass.
Curved ultra-thin glass is widely used in mobile electronic devices such as smartphones, and its market demand is gradually increasing. The ultra-thin glass molding process (UTGMP) is a new type of glass molding process with a short processing period and high precision. However, the UTGMP is restricted to the development of curved ultra-thin glass because of its low pass rate and high cost. In particular, surface defects, including cracks, microbubbles and water ripples result in poor surface integrity of curved ultra-thin glass. Therefore, the surface integrity of the curved ultra-thin glass was comprehensively studied and analyzed in this study. First, the principles and apparatus of the UTGMP are introduced. Second, a thermo-mechanical coupling model of ultrathin glass is established to simulate the temperature and stress distribution of curved glass using the finite element method. The results demonstrate that close to the curved area and slot, the variation in the temperature gradient is significant, and the internal stress is clearly large and concentrated. A series of experiments are conducted to further study the respective effects of various UTGMP parameters on the breakage rate and the densities of microbubbles and water ripples. A comparison of the simulation and experiment results reveals that the molding temperature has a significant effect on the breakage rate and the densities of microbubbles and water ripples, while the molding pressure has a significant effect on the breakage rate. Based on a comprehensive analysis, an optimal molding temperature of 806 degrees C and a molding pressure of 0.45 MPa are selected. Under this condition, the breakage rate decreases from 67% to 0%, the density of microbubbles decreases from 1.03/mm(2) to 0.89/mm(2), and the water ripple phenomenon weakens. This study contributes to a better understanding and improvement of the surface integrity of high-precision glass molding processes for curved ultra-thin glass.

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