液氮
核能
管道运输
核工程
传热
偏移量(计算机科学)
核电站
热交换器
环境科学
火花塞
机械工程
海洋工程
工程类
材料科学
机械
计算机科学
化学
生物
物理
有机化学
核物理学
程序设计语言
生态学
作者
Wei Zhang,Ke Xu,Minglei Hu,Hui-jie Liang,Hao Chen,Liqun Wang,Yongqiang Feng
出处
期刊:Energies
[Multidisciplinary Digital Publishing Institute]
日期:2024-08-23
卷期号:17 (17): 4211-4211
被引量:1
摘要
Nuclear energy, as an important component of the power system, has become a key focus of future energy development research. Various equipment and pipelines in nuclear power plants require regular inspection, maintenance, and repair. The pipelines in nuclear power plants are typically large, necessitating a device that can locally isolate sections of the pipeline during maintenance operations. Ice plug freezing technology, an economical and efficient method for maintaining and replacing equipment without shutdown, has been widely applied in nuclear power plants. The structure of the ice plug jacket, a type of low-temperature jacket heat exchanger, affects the flow path of the working fluid within the jacket and consequently impacts heat transfer. This study utilizes Computational Fluid Dynamics (CFD) to establish five types of jacket structures: standard, center-offset (center-in, side-out), helical, helical fin, and labyrinth. The effects of different structures on the freezing characteristics of ice plugs are analyzed and compared. The research indicates that the labyrinth jacket enhances the heat transfer performance between liquid nitrogen and the liquid inside the pipe, forming a larger ice layer at the same liquid nitrogen flow rate. Additionally, the standard jacket has the shortest sealing time at high liquid nitrogen flow rates.
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