Inverse Heat Conduction Problem in Estimating NPP Pipeline Performance

S. A. Cancemi, R. L. Frano
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引用次数: 2

Abstract

Most of today’s operating nuclear plants that were originally designed for 30 or 40-year life are facing the long-term operation issues. Therefore, it is of meaningful importance to assess the time-dependent degradation and the ageing of the relevant nuclear systems, structures, and components (SSCs) because of resulting loss of structural capacity. In this framework, the inverse method is implemented starting from temperatures at an accessible boundary, which are measured through a monitoring system. The reconstruction technique uses the elaborated signal provided by the monitoring system to determine temperature at inaccessible surface: this is the so-called inverse heat transfer problem (IHTP). The inverse space marching method is applied. Analytical and numerical studies are performed taking into account thermal transient conditions in order to determine thermal loads. In particular, the developed code demonstrates to be able to reconstruct temperature and stress profiles in any section of the pipe with a good accuracy. In addition, the thermal loads obtained suggest that the investigated transient condition is not able to jeopardise the integrity of NPP, confirming the possibility of the plant extension of life.
核电厂管道性能评估中的逆热传导问题
目前运行的大多数核电站,最初设计的使用寿命为30年或40年,都面临着长期运行问题。因此,评估相关核系统、结构和部件(ssc)因结构能力损失而导致的时间依赖性退化和老化具有重要意义。在此框架中,逆方法从可达边界的温度开始,通过监测系统测量温度。重建技术利用监测系统提供的精细信号来确定不可接近表面的温度:这就是所谓的逆传热问题(IHTP)。采用逆空间推进法。为了确定热负荷,进行了考虑热瞬态条件的分析和数值研究。特别是,开发的代码证明能够以良好的精度重建管道任何部分的温度和应力分布。此外,获得的热负荷表明,所研究的瞬态状态不会危及核电厂的完整性,从而证实了延长核电厂寿命的可能性。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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