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Investigation of the threshold temperatures of sodium-carbon dioxide reaction for SFR system design

机译:SFR系统设计中钠-二氧化碳反应的阈值温度研究

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In a sodium-cooled fast reactor, a sodium-water reaction (SWR) could be occurred at pressure boundaries between the two separated systems, the steam Rankine cycle and the sodium coolant system, which results in a serious problem in the system. Since it has been a design challenge for researchers, as an alternative system, the supercritical CO2 (S-CO2) Brayton cycle was suggested. To utilize the S-CO2 Brayton cycle to a SFR, a series of studies on the coupled system have been conducted at Korea Atomic Energy Research Institute (KAERI). The studies were mainly focused on the pressure boundary failure events and their consequences including Na-CO2 reactions. Prior to the experimental studies, the authors classified the reaction behaviors of Na-CO2 reaction based on the possible scenarios that could take place at pressure boundaries. Through experimental studies, it was found that the reaction follows typical chemical formulas and it is essentially dependent on the reaction temperature. More importantly, the reaction rate changed drastically at the specific temperatures and the reaction became flammable exceeding a certain temperature. To specify the design conditions of the SFR system coupled with the S-CO2 Brayton cycle, by means of a dedicated set-up the self-ignition temperature has been evaluated. Exceeding this threshold temperature a significant increase in the reaction speed is observed. We setup an experimental apparatus and a test matrix based on one of possible scenarios where the flammable Na-CO2 reaction takes place and we installed a visualized chemical reactor to watch reaction phenomenon around the self-ignition temperature. The experimental apparatus was designed to be easy to control heaters, to regulate gas supply, and to measure reaction temperature. Through the experiment, it was found that the flammable temperature of Na-CO2 reaction lies between 598.3 degrees C and 599.9 degrees C and how liquid sodium reacts with gaseous carbon dioxide at these temperatures. The results will be help to set design criteria for the pressure boundary and it will take long time but an appropriate safety system would be introduced. (C) 2017 Elsevier B.V. All rights reserved.
机译:在钠冷快堆中,在两个分离系统(蒸汽朗肯循环和钠冷却剂系统)之间的压力边界处可能会发生钠水反应(SWR),这会导致系统出现严重问题。由于这一直是研究人员的设计挑战,因此建议使用超临界CO2(S-CO2)布雷顿循环作为替代系统。为了将S-CO2布雷顿循环用于SFR,韩国原子能研究院(KAERI)进行了一系列有关耦合系统的研究。研究主要集中在压力边界破坏事件及其后果,包括Na-CO2反应。在进行实验研究之前,作者根据压力边界可能发生的情况对Na-CO2反应的反应行为进行了分类。通过实验研究,发现该反应遵循典型的化学式,并且基本上取决于反应温度。更重要的是,在特定温度下,反应速率急剧变化,超过一定温度,该反应变得易燃。为了指定结合S-CO2布雷顿循环的SFR系统的设计条件,已通过专用设置评估了自燃温度。超过该阈值温度,观察到反应速度显着增加。我们基于发生易燃Na-CO2反应的可能情况之一,设置了一个实验设备和一个测试矩阵,并安装了可视化化学反应器以观察自燃温度附近的反应现象。实验设备的设计易于控制加热器,调节气体供应和测量反应温度。通过该实验,发现Na-CO 2反应的可燃温度在598.3℃至599.9℃之间,并且液态钠在这些温度下如何与气态二氧化碳反应。结果将有助于设定压力边界的设计标准,这将花费很长时间,但是会引入适当的安全系统。 (C)2017 Elsevier B.V.保留所有权利。

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