Coupled fluid-thermal-structural analysis during the air cooling for glass tempering

被引:4
作者
Hua, Yang [1 ,2 ]
Liu, Fengxiao [1 ,2 ]
Liang, Tian [1 ,2 ]
机构
[1] Hebei Univ Technol, Sch Energy & Environm Engn, Tianjin 300401, Peoples R China
[2] Hebei Prov Key Lab Thermal Sci & Energy Clean Util, Tianjin 300401, Peoples R China
关键词
Glass tempering; The coupled fluid -thermal -structural method; Flow characteristics; Heat transfer characteristics; Stress distribution; RESIDUAL-STRESSES; JET IMPINGEMENT; HEAT-TRANSFER; NUMERICAL-SIMULATION; TEMPERATURE; PLATES; RELAXATION; HOLES;
D O I
10.1016/j.applthermaleng.2023.122260
中图分类号
O414.1 [热力学];
学科分类号
摘要
The tempering process of plate glass involves rapidly cooling the high-temperature glass using an array of impinging air jets, inducing desired stress during cooling. Consequently, the formation of tempering stress results from the coupled interaction among flow, heat transfer, and stress. However, most previous studies have commonly neglected the influence of the flow field by assuming a uniform and constant distribution of heat transfer coefficients at different positions on the glass plate, which deviates from actual situations. This study employed a fluid-thermal-structural coupled simulation approach to predict the non-uniform residual stress distribution in tempered glass and investigate the interaction mechanisms among flow, heat transfer, and stress. Simultaneously, to validate the reliability of the method and model, this study experimentally investigated the single-nozzle jet impingement cooling for glass tempering. The study concluded that the simulation results were consistent with the experiment. Subsequently, a comparative analysis was performed between the fluid-thermalstructural coupled simulation results based on real boundary conditions and the thermal-structural coupled simulation results based on ideal uniform heat transfer coefficient boundary conditions. The results revealed nonuniform distributions of both heat transfer coefficient and temperature due to varying localized flow characteristics. Consequently, the ratio of surface compressive stress to internal tensile stress along the width direction of the glass was not a fixed value but ranged from 1.63 to 2.38. Furthermore, significant differences were observed in the stress distribution under the simulations of fluid-thermal-structural coupling and thermalstructural coupling. Therefore, it is recommended to employ the fluid-thermal-structural coupling method when predicting localized stress distribution.
引用
收藏
页数:22
相关论文
共 59 条
  • [1] The annealing of glass.
    Adams, LH
    Williamson, ED
    [J]. JOURNAL OF THE FRANKLIN INSTITUTE, 1920, 190 : 835 - 870
  • [2] Aronen A, 2012, Modelling of deformations and stresses in glass tempering
  • [3] Effect of glass temperature before cooling and cooling rate on residual stresses in tempering
    Aronen, Antti
    Karvinen, Reijo
    [J]. GLASS STRUCTURES & ENGINEERING, 2018, 3 (01) : 3 - 15
  • [4] Bartenev G.M, 1949, Tempering of glass
  • [5] Parametric analysis of a round jet impingement on a heated plate
    Ben Kalifa, Rim
    Habli, Sabra
    Said, Nejla Mahjoub
    Bournot, Herve
    Le Palec, Georges
    [J]. INTERNATIONAL JOURNAL OF HEAT AND FLUID FLOW, 2016, 57 : 11 - 23
  • [6] Point fixings in annealed and tempered glass structures: Modeling and optimization of bolted connections
    Bernard, Fabrice
    Daudeville, Laurent
    [J]. ENGINEERING STRUCTURES, 2009, 31 (04) : 946 - 955
  • [7] Büyükyildiz A, 2007, PAMUKKALE U J ENG SC, V13, P247
  • [8] Numerical simulation of soda-lime silicate glass tempering
    Carre, H
    Daudeville, L
    [J]. JOURNAL DE PHYSIQUE IV, 1996, 6 (C1): : 175 - 185
  • [9] Measuring the 2D Residual Surface Stress Mapping in Tempered Glass under the Cooling Jets: the Influence of Process Parameters on the Stress Homogeneity and Isotropy
    Chen, Y.
    Lochegnies, D.
    Defontaine, R.
    Anton, J.
    Aben, H.
    Langlais, R.
    [J]. STRAIN, 2013, 49 (01) : 60 - 67
  • [10] Cheng J, 2012, Materials Reports, V26