首页> 外文会议>International Conference on Nuclear Engineering >DEVELOPMENT OF EVALUATION METHOD FOR COLD TRAP IN FAST BREEDER REACTOR (2) ANALYTICAL EVALUATION OF IMPURITY CAPTURING CAPACITY IN COLD TRAP
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DEVELOPMENT OF EVALUATION METHOD FOR COLD TRAP IN FAST BREEDER REACTOR (2) ANALYTICAL EVALUATION OF IMPURITY CAPTURING CAPACITY IN COLD TRAP

机译:快速育种反应器冷捕获评价方法的研制(2)冷陷阱杂质捕获容量的分析评价

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Because of the reactor core characteristics of fast breeder reactors (FBRs), liquid sodium must be used for the reactor core cooling. Small amounts of oxygen and hydrogen are dissolved in the FBR sodium coolant. To decrease those impurity concentrations, cold traps (CTs) are installed in the primary and secondary systems. CTs are a purification apparatus universally used in FBR sodium systems to maintain the oxygen and hydrogen concentration levels in sodium within acceptable limits. CTs can capture oxygen and hydrogen as sodium compounds by packing materials with stainless steel wires using precipitation phenomenon (crystallization) by decreasing the inlet sodium temperature below the saturation temperature. Oxygen and hydrogen are precipitated as Na_2O and NaH. We have been developing an evaluation method of the impurity capturing capacity in CTs. In this study, we investigated the impurity capturing capacity of CTs through three-dimensional computational fluid dynamics (CFD) analysis. We also used CFD analysis to evaluate the time variation of the pressure loss of packing material. The amount of precipitation was decided from the temperature, concentration and velocity distributions through the CFD analysis. First, a uniform wire mesh was used for the capturing capacity analysis in the CTs. Precipitation speed was higher for the hydrogen sodium compound than for the oxygen sodium compound. As sodium flowed from the outer to the inner side of the packing material, the hydrogen sodium compound was precipitated near the outer surface of the CTs and that blocked the sodium flow at the outer surface. As a result, if a lot of the hydrogen flowed into the CTs, the inner side of the wire mesh could not be used effectively. Second, we also proposed non-uniform wire meshed shapes and analyzed their capturing capacity in the CTs. The shape of the wire mesh was changed in the radial direction. A coarse meshed wire was placed on the outer side of the packing material and a closely packed meshed wire was placed on the inner side. Our CFD results showed that the most effective impurity capturing capacity of hydrogen sodium compound could be obtained by changing the precipitation speed and wire shape in the radial direction.
机译:由于快速育种反应器(FBR)的反应器核心特性,液体钠必须用于反应器芯冷却。将少量氧气和氢溶解在FBR钠冷却剂中。为了减少这些杂质浓度,冷阱(CTS)安装在初级和二级系统中。 CTS是普遍用于FBR钠系统中的纯化装置,以将氧气和氢浓度水平保持在可接受的限度内的氧气和氢浓度水平。 Cts可以通过使用沉淀现象(结晶)通过减少饱和温度降低沉淀现象(结晶)来捕获氧气和氢气作为钠化合物。氧气和氢气沉淀为Na_2O和Nah。我们一直在开发CTS中杂质捕获容量的评估方法。在这项研究中,我们通过三维计算流体动力学(CFD)分析研究了CTS的杂质捕获能力。我们还使用CFD分析来评估包装材料压力损失的时间变化。通过CFD分析从温度,浓度和速度分布中判定沉淀量。首先,使用均匀的金属丝网用于CTS中的捕获容量分析。氢气化合物的沉淀速度高于氧气钠化合物。由于从填料材料的外侧流过的钠,氢气钠化合物在CT的外表面附近沉淀,并且阻挡了外表面上的钠流。结果,如果大量流入CTS的氢气,则不能有效地使用金属丝网的内侧。其次,我们还提出了非均匀的丝网形状并分析了它们在CTS中的捕获容量。金属丝网形状在径向方向上改变。将粗啮合的线放置在填料材料的外侧上,并且将紧密包装的网状线放置在内侧。我们的CFD结果表明,通过在径向方向上改变沉淀速度和线形状,可以获得最有效的氢化钠化合物的捕获能力。

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