首页> 外文会议>International Conference on Nuclear Engineering >IMPLEMENTATION AND VALIDATION OF AN AEROSOL COLLECTION MODEL BY A SPRAY IN A CFD CODE: APPLICATION TO THE SCAVENGING OF AEROSOLS RELEASED DURING LASER CUTTING OPERATIONS OF FUEL DEBRIS FOR THE DISMANTLING OF THE DAMAGED REACTORS OF FUKUSHIMA DAI-ICHI
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IMPLEMENTATION AND VALIDATION OF AN AEROSOL COLLECTION MODEL BY A SPRAY IN A CFD CODE: APPLICATION TO THE SCAVENGING OF AEROSOLS RELEASED DURING LASER CUTTING OPERATIONS OF FUEL DEBRIS FOR THE DISMANTLING OF THE DAMAGED REACTORS OF FUKUSHIMA DAI-ICHI

机译:CFD代码喷雾的实施和验证气溶胶收集模型:应用于激光切削释放期间燃料碎片激光切割运作中释放的气溶胶的扫描,以拆除福岛Dai-ichi的受损反应器

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The general context of this article is related to the dismantling of the damaged reactors of Fukushima Dai-ichi and, more specifically, to the implementation of the laser cutting technique for the fuel debris retrieval. IRSN is involved in a project led by ONET Technologies and in partnership with CEA, to bring relevant elements in order to analyze the risks induced by the dispersion of aerosols released by the dismantling operations. During the laser cutting operations in air or underwater conditions, particles will be produced, involving a potential risk of dispersion into the environment. Hence, in order to prevent this situation, their collection is one of the safety key issues in the in-situ dismantling actions. For that, IRSN performed CFD simulations of aerosol scavenging by a spray to evaluate the collection efficiency by this technique. These simulations, conducted with the ANSYS CFX code, use an Eulerian method for the continuous phase, and a Lagrangian method for the spray for which a collection model detailed by Plumecocq [1] or Marchand [2] was implemented. Aerosols are modelled by a DQMOM population balance implemented by Gelain et al. [3] (already used for recent simulations in the same context), and enriched with a deposition model developed by Nerisson et al. [4]. At first, CFD simulations were performed with the geometry of the IRSN TOSQAN facility [5], comparatively to experimental results presented in a previous paper [6]. This step enables the validation of the collection model implementation and to study the sensitivity to the aerosol size. Then, CFD simulations were conducted with the geometry of the pedestal of Fukushima Dai-ichi reactors, to be more representative of a realistic case. For this configuration, sensitivity studies are described, highlighting both the influence of a multispray and of thermal-hydraulic conditions (temperature) on aerosol scavenging efficiency.
机译:本文的一般背景与福岛傣族的受损反应器拆除,更具体地,更具体地,以实现燃料碎片检索的激光切割技术。 IRSN涉及由女子技术领导的项目,并与CEA合作,带来相关元素,以分析拆除行动释放的气溶胶分散引起的风险。在空气或水下条件下的激光切割操作期间,将产生颗粒,涉及分散到环境中的潜在风险。因此,为了防止这种情况,他们的收藏是原位拆除行动中的安全关键问题之一。为此,IRSN通过喷雾进行了通过喷雾来扫除气溶胶清除的CFD模拟,以通过该技术评估收集效率。使用ANSYS CFX码进行的这些模拟,使用欧拉峰方法来实现连续相位,并实现了Plumecocq [1]或Marchand [2]详述的喷雾的拉格朗日方法。气溶胶是由Gelain等人实施的DQMOM人口余额为模型。 [3](已经在相同的上下文中用于最近的模拟),并富有由Nerisson等人开发的沉积模型。 [4]。首先,使用IRSN TOSQAN设施的几何形状进行CFD仿真[5],比较涉及先前纸张中的实验结果[6]。该步骤使得能够验证收集模型实现并研究对气溶胶大小的敏感性。然后,通过福岛傣族反应器的基座的几何形状进行CFD模拟,更具代表性的案例。对于这种配置,描述了灵敏度研究,突出了多功率和热液态条件(温度)对气溶胶清除效率的影响。

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