Stress Evaluation Method by Frequency Response Function for Elbow Pipes Under Thermal Stratification

Salman Alrakan, H. Kuribayashi, N. Kasahara
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Abstract

In nuclear reactors, piping components are susceptible to thermal fatigue damage. This is due to the fluid temperature change along these pipelines that can generate repeated thermal loads. One of these loads is thermal stratification. Thermal stratification generates an oscillating stratified layer, which induce cyclic thermal stresses leading to fatigue damage. To evaluate thermal fatigue by thermal stratification, a frequency response function for straight pipes was developed. However, this function cannot evaluate elbow pipes under thermal stratification. Here, thermal stress generates due to bending moment that is generated by the horizontal portion unlike straight pipes. Furthermore, the elbow pipe can give rise to stress intensifications which can affect the peak stress values within the elbow. To understand the stress generation mechanism, Finite element analyses were performed. The study focused on the effect the frequency of the fluid oscillation on the stress generation mechanism. Based on the clarified mechanism, the frequency response function was improved to correspond to the thermal stratification at elbow pipes. Applicability of this function was validated through agreement with finite element simulation.
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基于频响函数的弯管热分层应力评估方法
在核反应堆中,管道部件容易受到热疲劳损伤。这是由于沿着这些管道的流体温度变化,可以产生重复的热负荷。其中一个负荷是热分层。热分层产生振荡层状层,引起循环热应力,导致疲劳损伤。为了用热分层法评价直管的热疲劳,建立了直管的频率响应函数。但是,该函数不能对弯管进行热分层评价。在这里,与直管不同,由于水平部分产生的弯矩而产生热应力。此外,弯管会产生应力强化,从而影响弯管内的峰值应力值。为了了解应力产生机制,进行了有限元分析。重点研究了流体振荡频率对应力产生机制的影响。在明确机理的基础上,改进了频率响应函数,使其与弯头管的热分层相对应。通过与有限元仿真结果的吻合,验证了该函数的适用性。
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