Thermal Fatigue Evaluation Method Based on Power Spectrum Density Functions Against Fluid Temperature Fluctuation

Author:

Kasahara Naoto1,Kimura Nobuyuki1,Kamide Hideki1

Affiliation:

1. Japan Nuclear Cycle Development Institute, Oarai, Ibaraki, Japan

Abstract

Fluid temperature fluctuates at an incomplete mixing area of high and low temperature fluids in nuclear components. It induces random variations of local temperature gradients in structural walls, which lead to cyclic thermal stresses. When thermal stresses and cycle numbers are large, there are possibilities of fatigue crack initiations and propagations. It is recognized that there are attenuation factors depending on fluctuation frequency in the transfer process from fluid temperature to thermal stresses. If a frequency of fluctuation is very low, whole temperature of the wall can respond to fluid temperature, because thermal diffusivity homogenizes structural temperature. Therefore, low frequency fluctuations do not induce large thermal stress due to temperature gradients in structures. On the other hand, a wall surface cannot respond to very high frequency fluctuation, since a structure has a time constant of thermal response. High frequency fluctuations do not lead to large thermal stress. Paying attention to its attenuation mechanism, Japan Nuclear Cycle Development Institute (JNC) has proposed a fatigue evaluation method related to frequencies. The first step of this method is an evaluation of Power Spectrum Density (PSD) on fluid, from design specifications such as flow rates, diameters of pipes and materials. In the next step, the PSD of fluid is converted to PSD of thermal stress by the frequency transfer function. Finally, the PSD of thermal stress is transformed to time history of stress under an assumption of random phase. Fatigue damage factors can be evaluated from stress ranges and cycles obtained by the rain flow wave count method. Proposed method was applied to evaluate fatigue damage of piping junction model tests conducted at Oarai Engineering Center. Through comparison with direct evaluation from measurements and predictions by conventional methods, the accuracy of the proposed method was validated.

Publisher

ASMEDC

Cited by 8 articles. 订阅此论文施引文献 订阅此论文施引文献,注册后可以免费订阅5篇论文的施引文献,订阅后可以查看论文全部施引文献

1. Development of a spectrum method for modelling fatigue due to thermal mixing;Nuclear Engineering and Design;2018-05

2. Evaluation of Thermal Fatigue Failure Probability at a Mixing Tee Subjected to Random Fluid Temperature Fluctuation;SNA + MC 2013 - Joint International Conference on Supercomputing in Nuclear Applications + Monte Carlo;2014

3. Design Evaluation Method for Random Fatigue Based on Spectrum Characteristics;Journal of Pressure Vessel Technology;2012-05-17

4. Numerical Simulation of Thermal Striping Phenomena in a T-Junction Piping System Using Large Eddy Simulation;Journal of Power and Energy Systems;2009

5. Simulation of thermal fatigue damage in a 316L model pipe component;International Journal of Pressure Vessels and Piping;2008-11

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