首页> 外文会议>International Conference on Nuclear Engineering >ANALYSIS OF TWO DIFFERENT TYPES OF HYDROGEN COMBUSTION DURING SEVERE ACCIDENTS IN A TYPICAL PRESSURIZED WATER REACTOR
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ANALYSIS OF TWO DIFFERENT TYPES OF HYDROGEN COMBUSTION DURING SEVERE ACCIDENTS IN A TYPICAL PRESSURIZED WATER REACTOR

机译:典型加压水反应器中严重事故中两种不同类型的氢燃烧分析

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Hydrogen combustion is an important phenomenon that may occur during severe accidents of Nuclear Power Plants (NPPs). Depending on the specific plant design, the initiating events, and mitigation actions executed, hydrogen combustion may have distinct characteristics and may damage the plant in various degrees. The worst scenario will be the catastrophic failure of containment. In this study two specific types of hydrogen combustion are analyzed to evaluate their impact on the containment integrity. In this paper, Station Blackout (SBO) and Loss of Coolant Accidents (LOCAs) sequences are analyzed using MAAP4 (Modular Accident Analysis Program) code. The former sequence is used to represent hydrogen combustion phenomenon under the condition that the reactor pressure vessel (RPV) breaches at high pressure and the latter sequence represents the phenomenon that RPV fails at low pressure. Two types of hydrogen combustion are observed in the simulation. The Type I hydrogen combustion represents global and instantaneous hydrogen combustion. Large pressure spike is created during the combustion and represents a threat to containment integrity. Type II hydrogen combustion is localized burn and burn continuously over a time period. There is hardly any impact of this type hydrogen burn on the containment pressurization rate. Both types of hydrogen combustion can occur in the severe accidents without any human intervention. From the accident mitigation point of view, operators should try to bring the containment into conditions that favor the Type II hydrogen combustion.
机译:氢燃烧是可能在核电厂(NPPS)的严重事故中发生的重要现象。根据具体的工厂设计,所执行的启动事件和缓解措施,氢燃烧可能具有不同的特性,并且可能损坏植物在各种程度上。最糟糕的情景将是危害遏制失败。在这项研究中,分析了两种特定类型的氢燃烧,以评估它们对遏制完整性的影响。在本文中,使用MAAP4(模块化事故分析程序)代码分析了站挡板(SBO)和冷却剂事故(LOCAS)序列的丢失。前者序列用于表示氢气燃​​烧现象,在高压下违规的反应器压力容器(RPV)突发的条件下表示RPV在低压下失效的现象。在模拟中观察到两种类型的氢燃烧。 I型氢燃烧代表全球和瞬时氢燃烧。在燃烧过程中产生大的压力尖峰,代表遏制完整性的威胁。 II型氢燃烧是局部燃烧并在一段时间内连续燃烧。这种氢气燃烧几乎没有任何影响对容器加压速率。两种类型的氢燃烧可能在严重的事故中发生而没有任何人为干预。从事故缓解的角度来看,运营商应尽量将遏制融入有利于II型氢燃烧的条件。

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