ERVC 系统热工水力特性的数值研究

IF 1.9 3区 工程技术 Q1 NUCLEAR SCIENCE & TECHNOLOGY
Yujian Huang , Mingjun Wang , Suizheng Qiu , Kui Zhang , Wenxi Tian , Zhen Zhang
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引用次数: 0

摘要

在堆芯熔化的严重事故中,作为一种应急策略,舱内滞留(IVR)可以结束压力容器内的事故过程。本文利用强化传热的方法来提高 CHF 临界值。本文根据对鳍片类型的研究,选择了三种鳍片结构(纵向鳍片、矩形鳍片和圆柱形鳍片),并将其置于隔热层上,从而改变流道内部结构,起到湍流扰动的作用。多相流模型采用了沸腾模型(RPI 模型),考虑了两相之间的动量交换,如阻力、虚拟质量力和壁面润滑力,以及相间传质和传热。数学物理模型在 ULPU 的切片实验中得到了验证,计算结果与实验物理值进行了比较,误差在可接受范围内,两者吻合良好。计算结果表明,圆柱形翅片的 CHF 效果优于矩形翅片和纵向翅片,因为圆柱形翅片周围的湍流强度强于矩形翅片和纵向翅片。对于相同的翅片,当翅片间距较小,翅片高度在 40-60 mm 之间时,圆柱形翅片对核心的冷却效果和余热去除效果更好。数值模拟计算结果可为工程设计提供一定的参考。
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 thermal hydraulic characteristics of ERVC system
Under the serious accident of core melting, in-vessel retention (IVR) can end the accident process inside the pressure vessel as an emergency strategy. The ERVC can remove the residual heat of the core.
The paper utilizes the method of enhanced heat transfer to improve CHF threshold. In this paper, according to investigating the types of fins, three fin structures (Longitudinal fin, Rectangular fin, Cylindrical fins) are selected and placed on the thermal insulation layer, which change the internal structure of the flow channel to play the role of turbulence disturbance. For the multi-phase flow model, a boiling model (RPI model) is used, considering the momentum exchange between the two phases, like drag force, virtual mass force, and wall lubrication force, as well as interphase mass transfer and heat transfer. The mathematical physical model is verified for the slicing experiment of ULPU, and the calculated result is compared with experimental physical values, as well as the error is within acceptable ranges, which are in good agreement. The calculations show that the CHF effect of cylindrical fin is better than rectangular fin and longitudinal fin, since that the turbulence intensity of around cylindrical fin is stronger than rectangular fin and longitudinal fin. For the same fin, when the fins spacing are smaller and fins height are between 40–60 mm, the cylindrical fin geometry has better cooling effect on the core and the residual heat removing. The enhanced heat transfer effect of cylindrical fins can be improved by 21 %.The numerical simulation calculation results can provide certain reference for engineering design.
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来源期刊
Annals of Nuclear Energy
Annals of Nuclear Energy 工程技术-核科学技术
CiteScore
4.30
自引率
21.10%
发文量
632
审稿时长
7.3 months
期刊介绍: Annals of Nuclear Energy provides an international medium for the communication of original research, ideas and developments in all areas of the field of nuclear energy science and technology. Its scope embraces nuclear fuel reserves, fuel cycles and cost, materials, processing, system and component technology (fission only), design and optimization, direct conversion of nuclear energy sources, environmental control, reactor physics, heat transfer and fluid dynamics, structural analysis, fuel management, future developments, nuclear fuel and safety, nuclear aerosol, neutron physics, computer technology (both software and hardware), risk assessment, radioactive waste disposal and reactor thermal hydraulics. Papers submitted to Annals need to demonstrate a clear link to nuclear power generation/nuclear engineering. Papers which deal with pure nuclear physics, pure health physics, imaging, or attenuation and shielding properties of concretes and various geological materials are not within the scope of the journal. Also, papers that deal with policy or economics are not within the scope of the journal.
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