Fatigue Risk Evaluation of a Pressure Vessel Plug Subject to Flow Induced Vibration

Robert X. Wang, L. Chang, Tom Hurst, A. Hurst
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Abstract

The steam generator (SG) channel head forms part of the reactor coolant pressure boundary and is of high nuclear safety duty. The channel head failure is considered intolerable and there are no reasonably practicable physical provisions available to prevent its failure. Therefore the channel head is classified as either an Incredibility of Failure (IoF) or High Integrity (HI) component and it requires additional analyses and assessments beyond the design code requirements to achieve and demonstrate its structural integrity. The hydrodynamic effects of the primary coolant in the annulus around the drain plug of the SG channel head are not very well understood, but are exacerbated by high flow rates in its immediate vicinity due to typical design details. Vibration of the drain plug due to coolant flow may result in fatigue induced failure of the channel head drain penetration weld. In the study presented here, random vibration analyses and a fatigue assessment have been carried out for a submerged drain plug in a pressurized water reactor (PWR) SG channel head. A finite element (FE) model of the drain plug submerged in water coolant has been developed. Modal analyses confirmed that the natural frequency of the submerged drain plug is significantly reduced by the large hydrodynamic added mass from the surrounding fluid. The fatigue evaluation undertaken using ASME III fatigue curve concluded that the fatigue life usage due to the vibration of the drain plug is negligible even after an extended plant life. Therefore the coolant flow-induced drain plug vibration is not a threat to the channel head integrity.
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压力容器塞流激振动疲劳风险评价
蒸汽发生器(SG)通道封头是反应堆冷却剂压力边界的一部分,具有很高的核安全责任。槽头故障被认为是不可容忍的,并且没有合理可行的物理规定可用于防止其故障。因此,通道头被归类为故障不可思议性(IoF)或高完整性(HI)组件,它需要超出设计规范要求的额外分析和评估,以实现并证明其结构完整性。SG通道封头排水塞周围环空中主冷却剂的水动力效应还不是很清楚,但由于典型的设计细节,其附近的高流量会加剧。由于冷却液流动引起的泄水塞振动可能导致槽头泄水渗透焊的疲劳失效。在本文中,对压水堆(PWR) SG通道头的浸没排水塞进行了随机振动分析和疲劳评估。建立了浸没在水冷剂中的排水塞的有限元模型。模态分析证实,淹没式泄油塞的固有频率因周围流体的大流体动力附加质量而显著降低。使用ASME III疲劳曲线进行的疲劳评估得出结论,即使在延长工厂寿命后,由于泄油塞振动引起的疲劳寿命使用可以忽略不计。因此,冷却剂流动引起的泄油塞振动不会对通道头部的完整性构成威胁。
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