首页> 外文会议>International Conference on Nuclear Engineering >DEVELOPMENT OF A DEVICE FOR DETECTING HELIUM LEAKS FROM CANISTERS (PART 2): NUMERICAL ANALYSIS OF TEMPERATURE BEHAVIOR DURING GAS LEAKS FROM A CANISTER OF A 1/4.5 SCALE CASK MODEL
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DEVELOPMENT OF A DEVICE FOR DETECTING HELIUM LEAKS FROM CANISTERS (PART 2): NUMERICAL ANALYSIS OF TEMPERATURE BEHAVIOR DURING GAS LEAKS FROM A CANISTER OF A 1/4.5 SCALE CASK MODEL

机译:一种用于检测罐中氦气泄漏的装置(第2部分):1 / 4.5级储料罐罐中的气体泄漏期间温度行为的数值分析

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In the concrete cask, the canister is sealed with lids by welding, and has high sealing performance. But considering long-term storage, there is a concern about loss of the sealing performance due to stress corrosion cracking (SCC). In the concrete cask, unlike the metal cask, it is not mandatory to constantly monitor helium pressure between the lids. However, it is useful from the viewpoint of improving safety during the long-term storage to install a helium leak detector in the canister inside the concrete cask. Currently, we are developing the leak detector utilizing the phenomenon that the surface temperature of the canister changes when helium leaks out of the canister. As part of developing the leak detector of the canister, leak tests were performed using a small canister model as a pressurized vessel and a 1/4.5 scale cask model of the actual cask including the canister. This leak detector utilized the phenomenon that canister bottom temperature (TB) increases and canister lid temperature (TT) decreases when the internal pressure of the canister decreases. In computational fluid dynamics (CFD) calculation, focused on this phenomenon, the influence of the internal pressure and physical properties of internal gas in the canister were examined by calculating conditions of three kinds of pressure and two types of gas (air and helium). The main purpose of the CFD calculation was to confirm the results of the experiment, and we grasped the phenomenon occurring in the canister and elucidated its mechanism. For the CFD calculation, a commercial CFD software, STAR-CCM+ (ver.12.06.010) by Siemens PLM Software Company, was used. A CAD file used for the calculation simulated also the shape inside the canister (e.g. basket, fuel rods). A polyhedral mesh was used for a calculation mesh. In the small canister model, a mesh of its ambient air was not generated, and heat transfer between the canister surface and the ambient air was calculated from a heat transfer correlation equation. On the other hand, in the 1 / 4.5 scale cask model, the mesh of its ambient air was generated, so that the heat transfer on the surface of the canister was calculated according to the actual heat transfer phenomenon. The internal gas and the ambient air of the canister were ideal gas, and buoyancy due to density change was taken into consideration. A realizable k-epsilon model was used for a turbulence model, and a DO model was used for a radiation model.
机译:在混凝土桶中,罐通过焊接用盖子密封,并且具有高密封性性能。但考虑到长期储存,涉及由于应力腐蚀裂纹(SCC)引起的密封性能丧失。在混凝土桶中,与金属桶不同,不得在盖子之间不断监测氦压力。然而,从改善长期储存期间的安全性的观点来看,它很有用,在混凝土桶内安装罐内罐中的氦气泄漏探测器。目前,我们正在利用该现象开发泄漏探测器,当氦气从罐中泄漏时罐的表面温度变化的现象。作为开发罐的泄漏检测器的一部分,使用小罐式模型作为加压容器和包括罐的实际桶的1 / 4.5刻度木桶模型进行泄漏测试。当罐的内部压力降低时,该泄漏检测器利用罐底部温度(Tb)增加和罐盖温度(Tt)的现象减少。在计算流体动力学(CFD)计算中,专注于这种现象,通过计算三种压力和两种气体(空气和氦气)的条件来检查内部气体内部压力和内部气体物理性质的影响。 CFD计算的主要目的是确认实验结果,我们掌握了罐中发生的现象,并阐明了其机制。对于CFD计算,使用Siemens PLM软件公司的商业CFD软件,Star-CCM +(Ver.12.06.010)。用于计算的CAD文件也模拟了罐内的形状(例如篮子,燃料棒)。多面体网格用于计算网格。在小罐模型中,未产生其环境空气的网,并且根据传热相关方程计算罐表面和环境空气之间的热传递。另一方面,在1 / 4.5刻度木桶模型中,产生其环境空气的网,从而根据实际的传热现象计算罐的表面上的传热。内部气体和罐的环境空气是理想的气体,也考虑了由于密度变化引起的浮力。可实现的K-EPSILON模型用于湍流模型,并且使用DO模型进行辐射模型。

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