首页> 外文会议>International topical meeting on nuclear reactor thermal hydraulics >VALIDATION AND APPLICATION OF THE REKO-DIREKT CODE FOR THE SIMULATION OF PASSIVE AUTO-CATALYTIC RECOMBINERS (PARs) OPERATIONAL BEHAVIOUR
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VALIDATION AND APPLICATION OF THE REKO-DIREKT CODE FOR THE SIMULATION OF PASSIVE AUTO-CATALYTIC RECOMBINERS (PARs) OPERATIONAL BEHAVIOUR

机译:REKO-DIREKT代码在无源自催化重组子(PAR)操作行为模拟中的验证和应用

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In order to reduce the accumulation of hydrogen and thus to mitigate the risk of a combustion, passive auto-catalytic recombiners (PARs) have been installed within LWR containments in many countries. The severe hydrogen combustion events in the recent Fukushima-Daiichi accident are likely to imply an increased demand in upgrading nuclear power plants with PARs. Numerical simulation is an important tool in order to assess PAR operation during a severe accident in terms of efficiency and proper installation. For the quite challenging boundary conditions during a severe accident, including e.g. low oxygen amount, high steam amount, presence of carbon monoxide, advanced numerical PAR models are required. The REKO-DIREKT code has been developed in order to provide a PAR model capable to simulate complex PAR phenomena and at the same time being suitable for implementation in thermal hydraulics codes. The development of REKO-DIREKT was supported by small-scale experiments performed at JULICH in the REKO facilities. These facilities allow to study PAR related single phenomena such as reaction kinetics under different conditions including variation of steam, oxygen and carbon monoxide (REKO-3) and the chimney effect (REKO-4). Recently, the code has been validated against full-scale experiments performed in the THAI facility at Eschborn/Germany in the framework of the OECD/NEA-THAI project. By this, the code has proven its applicability for different PAR designs and for a broad range of boundary conditions (pressure of up to 3 bar, steam amount up to 60 vol.%, low-oxygen conditions). REKO-DIREKT has been successfully implemented in the commercial CFD code ANSYS-CFX as well as in the LP code COCOSYS (GRS, Germany). The paper gives an overview of the basic code features and development steps. Different validation steps are presented from stand-alone application to the analysis of a full experimental transient by means of code coupling with the CFD code ANSYS CFX 15. The consistent representation of all test parameters underlines the good predictive capabilities of the modelling approach.
机译:为了减少氢气的积累,从而减少燃烧的风险,许多国家已在LWR的安全壳内安装了被动式自动催化重组器(PAR)。在最近的福岛第一核电站事故中发生的严重氢气燃烧事件可能暗示着对使用PAR升级核电站的需求增加。数值模拟是一种重要工具,可以根据效率和正确安装情况来评估严重事故期间的PAR运行情况。对于严重事故期间极具挑战性的边界条件,例如需要低氧量,高蒸汽量,一氧化碳的存在,高级数值PAR模型。开发REKO-DIREKT代码是为了提供一个PAR模型,该模型能够模拟复杂的PAR现象,同时适合于在热力液压代码中实施。 REKO-DIREKT的开发得到了REKO设施在JULICH进行的小规模试验的支持。这些设施可以研究PAR相关的单一现象,例如在不同条件下的反应动力学,包括蒸汽,氧气和一氧化碳的变化(REKO-3)和烟囱效应(REKO-4)。最近,该代码已经在OECD / NEA-THAI项目的框架内针对在德国埃施博恩的THAI设施中进行的全面实验进行了验证。这样,该规范已证明其适用于不同的PAR设计以及广泛的边界条件(压力高达3 bar,蒸汽量高达60 vol。%,低氧条件)。 REKO-DIREKT已成功在商业CFD代码ANSYS-CFX和LP代码COCOSYS(德国GRS)中实现。本文概述了基本的代码功能和开发步骤。从独立应用到通过与CFD代码ANSYS CFX 15耦合的代码对整个实验瞬态进行分析,提出了不同的验证步骤。所有测试参数的一致表示方式强调了建模方法的良好预测能力。

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