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Ultimate pressure bearing capacity analysis for the prestressed concrete containment

机译:预应力混凝土安全壳的极限承压能力分析

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摘要

PWR nuclear power technology has been developed in China according to the experience feedback of the Fukushima accident and the global latest safety requirements, in which the double-containment design with hemisphere dome having larger free space is adopted. Ultimate pressure bearing capacity of the Prestressed Concrete Containment Vessel (PCCV) is analyzed in this study to provide technical support for development of Severe Accident Management Guidelines (SAMG) in nuclear power plants. Firstly, the finite element model of the PCCV is built, including the concrete, the rebars, the prestressed tendons, the steel liner, and penetrations. Combining of free-sweep mesh is adopted according to the characteristics of the containment structure. Proper mesh size is determined through mesh sensitivity analysis. Prestressing loss is calculated for four types of prestressed tendons, and decreasing temperature method is adopted in prestressing simulation. Temperature field of the containment is calculated, and stratified temperature method is adopted in temperature simulation. Ultimate pressure bearing analysis results show that, with the increase of internal pressure, the containment gradually expands outward, and the maximum stress and maximum radial deformation of the containment appear near the equipment hatch. When the internal pressure load reaches 1.26 MPa (g), the equivalent plastic strain of the steel liner in the right area of the equipment hatch is 0.15%. At this time, the concrete cracks on a large area, and the prestressed tendons do not yield. (C) 2018 Elsevier Ltd. All rights reserved.
机译:根据福岛核事故的经验反馈和全球最新的安全要求,在中国开发了压水堆核电技术,其中采用了具有更大自由空间的半球形圆顶的双重围护设计。本研究分析了预应力混凝土安全壳(PCCV)的极限承压能力,为核电厂《严重事故管理指南》(SAMG)的制定提供技术支持。首先,建立了PCCV的有限元模型,包括混凝土,钢筋,预应力筋,钢衬和穿透。根据围护结构的特点,采用自由扫描网格的组合。通过网格灵敏度分析确定合适的网格尺寸。计算了四种预应力筋的预应力损失,并在预应力模拟中采用降温法。计算了安全壳的温度场,并在温度模拟中采用了分层温度法。极限承压分析结果表明,随着内部压力的增加,安全壳逐渐向外膨胀,并且在设备舱口附近出现了最大应力和最大径向变形。当内部压力负荷达到1.26 MPa(g)时,设备舱口右侧区域中钢衬的等效塑性应变为0.15%。此时,混凝土大面积开裂,预应力筋不屈服。 (C)2018 Elsevier Ltd.保留所有权利。

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