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Effect of sealing temperature on the sealing edge performance of vacuum glazing

机译:封口温度对真空玻璃窗封边性能的影响

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摘要

Because inadequate control of the temperature of vacuum glazing may cause changes in form, stress, microstructure, or performance and thereby affect its lifetime, vacuum welding has been adopted to seal the vacuum glazing from the side, and experiments using different sealing temperatures have been executed. The impact of different sealing temperatures on the microstructure of the sealing layer was analyzed to evaluate the combination of material science features on the interface and to reveal the influence of the sealing temperature on the hardness and residual stress of the sealing layer. The results show that a sufficiently high sealing temperature will drive the sealing layer to transform from a hybrid structure to the liquid phase, accelerate the element migration, eliminate pores, stabilize and compact the structure and improve the sealing performance of the vacuum glazing. As the sealing temperature increases, the residual stress and hardness substantially increase. However, when the sealing temperature reaches 460 degrees C, the residual stress and hardness begin to plateau, and when the sealing temperature reaches 470 degrees C, no further change can be detected. Therefore, a sufficiently high sealing temperature is beneficial to the bonding of glass and sealing solder and can promote the sealing performance of the vacuum glazing. (C) 2015 Elsevier Ltd. All rights reserved.
机译:由于对真空玻璃的温度控制不当可能会导致形状,应力,微结构或性能发生变化,从而影响其使用寿命,因此已采用真空焊接从侧面密封真空玻璃,并已进行了使用不同密封温度的实验。分析了不同密封温度对密封层微观结构的影响,以评估界面上材料科学特征的组合,并揭示了密封温度对密封层硬度和残余应力的影响。结果表明,足够高的密封温度将驱动密封层从杂化结构转变为液相,加速元素迁移,消除孔洞,稳定并压实结构,并改善真空玻璃的密封性能。随着密封温度的升高,残余应力和硬度大大提高。然而,当密封温度达到460℃时,残余应力和硬度开始趋于平稳,并且当密封温度达到470℃时,无法检测到进一步的变化。因此,足够高的密封温度有利于玻璃和密封焊料的结合,并且可以提高真空玻璃的密封性能。 (C)2015 Elsevier Ltd.保留所有权利。

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