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Assessment of Mass Fraction and Melting Temperature for the Application of Limestone Concrete and Siliceous Concrete to Nuclear Reactor Basemat Considering Molten Core-Concrete Interaction

机译:考虑熔融核-混凝土相互作用的石灰石混凝土和硅质混凝土在核反应堆基垫上的质量分数和熔化温度评估

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Severe accident scenarios in nuclear reactors, such as nuclear meltdown, reveal that an extremely hot molten core may fall into the nuclear reactor cavity and seriously affect the safety of the nuclear containment vessel due to the chain reaction caused by the reaction between the molten core and concrete. This paper reports on research focused on the type and amount of vapor produced during the reaction between a high-temperature molten core and concrete, as well as on the erosion rate of concrete and the heat transfer characteristics at its vicinity. This study identifies the mass fraction and melting temperature as the most influential properties of concrete necessary for a safety analysis conducted in relation to the thermal interaction between the molten core and the basemat concrete. The types of concrete that are actually used in nuclear reactor cavities were investigated. The H2O content in concrete required for the computation of the relative amount of gases generated by the chemical reaction of the vapor, the quantity of CO2 necessary for computing the cooling speed of the molten core, and the melting temperature of concrete are evaluated experimentally for the molten core econcrete interaction analysis. Copyright (C) 2016, Published by Elsevier Korea LLC on behalf of Korean Nuclear Society.
机译:核反应堆中发生的严重事故场景(例如核熔毁)表明,由于熔融核与核之间的反应引起的连锁反应,极热的熔融核可能会掉入核反应堆腔中并严重影响核安全壳的安全。具体。本文的研究主要集中在高温熔融岩心与混凝土反应过程中产生的蒸汽的类型和数量,以及混凝土的侵蚀速率及其附近的传热特性。这项研究确定质量分数和熔化温度是进行与熔融芯和底垫混凝土之间的热相互作用有关的安全分析所需的最具影响力的混凝土性能。研究了核反应堆空腔中实际使用的混凝土类型。通过实验对混凝土中的H2O含量进行了实验评估,计算出由蒸汽化学反应产生的相对气体所需的H2O含量,计算熔融芯的冷却速度所需的CO2数量以及混凝土的熔融温度。熔融岩心混凝土相互作用分析。版权所有(C)2016,由Elsevier Korea LLC代表韩国核协会出版。

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