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May 31, 2026Buildings1 citationsOpen Access

Local Instability and Optical-Serviceability Failure Mechanisms of Cold-Bent Triangular Tempered Glass Plates with Discrete Point Supports

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XWXiufeng WuZZZhiyuan ZhangJPJi Peng

Key Points

  • This research aims to investigate local instability and optical-serviceability failure mechanisms in cold-bent triangular glass plates.
  • Cold-bending tests conducted on isosceles triangular fully toughened glass plates to measure out-of-plane deflection and surface-strain evolution.
  • An Abaqus finite element model was established and validated for systematic parametric analysis.
  • A semi-empirical reduced-order framework based on von Kármán’s large-deflection theory was developed to identify instability-sensitive configurations.
  • Peak mid-span deflection reduced by 47–68% with increased clamps from two to four, satisfying EN 12150-1 limits.
  • Critical response turning point identified at a height-base ratio of approximately 0.5 under two-point support before material fracture limit is reached.
  • Transition observed from bending-dominated to nonlinear large-deflection regime marked by mid-span deflection reversal.

Abstract

Cold bending provides a cost-effective method for fabricating triangular glass units for free-form architectural envelopes. Replacing conventional continuous edge constraints with discrete point clamps reduces over-constraint but introduces pronounced bending–membrane coupling in the unsupported spans between adjacent clamps. Consequently, the mechanisms governing local instability and optical-quality degradation remain insufficiently understood. In this study, cold-bending tests were performed on isosceles triangular fully toughened glass plates to measure out-of-plane deflection and surface-strain evolution. The experimental data were then used to establish and validate an Abaqus finite element model for systematic parametric analysis. Based on von Kármán’s large-deflection theory, a semi-empirical reduced-order framework that combines modal superposition with the response-surface method was developed to identify instability-sensitive configurations. The results show that, under weak constraints and large vertex angles, the panel response changes from a bending-dominated regime to a strongly nonlinear large-deflection regime governed by membrane effects; this transition is marked by a reversal of mid-span deflection and a compressive-to-tensile stress transition. Increasing the number of clamps from two to four substantially suppresses both global and local distortion by shortening the free spans and redistributing membrane strain energy, reducing peak mid-span deflection by 47–68%, and satisfying the EN 12150-1 limits for both bow deformation and local distortion. The height-to-base ratio is the dominant geometric parameter controlling instability. Under two-point support, a critical response turning point occurs at a height–base ratio of approximately 0.5 before the material fracture limit is reached, defining a geometric boundary below which optical serviceability failure accelerates. These findings provide a theoretical basis and quantitative engineering guidance for optimizing the cold-bending process of isosceles triangular fully toughened glass plates.

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Cite This Study

Wu et al. (2026) studied this question.

synapsesocial.com/papers/6a1bd2375783ba022b6fd9bfhttps://doi.org/10.3390/buildings16112176
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