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BULLETIN OF THE CHINESE CERAMIC SOCIETY ›› 2026, Vol. 45 ›› Issue (1): 275-287.DOI: 10.16552/j.cnki.issn1001-1625.2025.0763

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Physical Simulation of Bubble Movement in Ascending Section of Platinum Channel for Electronic Display Glass

HE Feng1(), ZHI Jiayao1,2, ZHAO Zhilong3, ZHANG Kejian3, XIE Junlin1, ZHAO Zhiyong1, TIAN Yingliang1()   

  1. 1. College of Materials Science and Engineering,Beijing University of Technology,Beijing 100124,China
    2. College of Carbon Neutrality Future Technology,Beijing University of Technology,Beijing 100124,China
    3. Henan Xingyang Optoelectronic Technology Co. ,Ltd. ,Anyang 455100,China
  • Received:2025-07-31 Revised:2025-09-06 Online:2026-01-20 Published:2026-02-10

Abstract:

Platinum channel is one of the most critical pieces of equipment in the production of electronic display glass. This paper studied the influence of inclination angle changes in ascending section of platinum channel structure on movement behavior of bubbles in molten glass. A physical simulation experimental platform with a model-actual geometric ratio of 1∶4 was constructed through structural and dimensional design. Polydimethylsiloxane was used as the simulated liquid, combined with similarity criteria (Reynolds number, Galileo number), the movement characteristics and distribution laws of bubbles were systematically analyzed under three inclination angles of the ascending section of platinum channel: 23°, 30°, and 45°. The results show that the measured kinematic viscosity of the simulated liquid has good similarity with the theoretically calculated kinematic viscosity. Changes in the inclination angle of ascending section of platinum channel have a significant impact on the flow of molten glass and the movement of bubbles. When the inclination angle of ascending section of platinum channel changes from 23° to 45°, the bubbles at its outlet are more concentrated in upper part of the pipe cross-section, and the lifting effect on bubbles is obvious. After comprehensive analysis, it is found that the effect of a 30° inclination angle is optimal.Within the scope of this study, an increase in the inclination angle of ascending section of platinum channel strengthens the synergistic effect between bubble buoyancy and fluid dynamics.

Key words: electronic display glass, platinum channel, ascending section, physical simulation, bubble movement

CLC Number: