玻璃固化体暂存自然通风冷却影响因素及结构优化的数值研究

Yuan Gao , Sihan Liu , Tianci Han , Kai Ma
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引用次数: 0

摘要

玻璃固化技术是处理乏燃料后处理产生的高放废液的成熟有效的技术手段。玻璃固化体干式贮存技术是一个发展趋势。在自然通风冷却的玻璃固化体暂存中,结构设计至关重要,它直接影响到暂存的安全性和稳定性。基于计算流体力学(CFD),研究了不同结构参数和保温材料的应用对临时储存库自然通风冷却效果的影响。目的是增强自然通风,减少玻璃固化体对临时存储的混凝土结构的热影响。结果表明:排风轴的高度、排风轴的数量、排风轴的形状、排风轴与玻璃制品之间的环形间隙、排风轴内部挡板的倾角、排风轴的尺寸和通风方式是影响临时储存库通风冷却的关键因素。进风口和出风口的截面积、玻璃制品的横向节距对临时储存中的通风换热影响不大。得到了最优的结构布置。临时仓库的顶部和四个侧壁均安装保温材料时,自然通风降温效果最佳。研究结果为玻璃固化体暂存结构设计和优化提供了理论依据。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Numerical study on the factors affecting natural ventilation cooling and structural optimization of glass curing body temporary storage
Glass curing technology is a mature and effective technical means to deal with high level liquid waste produced by spent fuel reprocessing. The dry storage technology of glass curing body is a developing trend. In the natural ventilation cooling of glass curing body temporary storage, the structural design is crucial, which directly affects the safety and stability of the temporary storage. This paper investigates the effects of various structural parameters and the application of insulating materials on the natural ventilation cooling effectiveness of the temporary storage based on Computational Fluid Dynamics (CFD). The goal is to enhance natural ventilation and reduce the thermal impact of the glass curing body on the concrete structure of the temporary storage. The results show that the height of exhaust shaft, the number of exhaust shaft, the shape of exhaust shaft, annular gap between shaft and glass products, inclination angle of baffle inside intake shaft, the dimensions of intake shaft and ventilation mode are the key factors affecting the ventilation cooling of temporary storage. The cross-sectional area of the air inlet and outlet, and the transverse pitch of glass products have little impact on the ventilation and heat exchange in the temporary storage. The optimal structural arrangement is obtained. The natural ventilation cooling effect is optimal when insulating materials are installed on the top and all four side walls of the temporary storage. The research provides a theoretical basis for the structural design and optimization of glass curing body temporary storage.
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