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A computer vision approach for dynamic tracking of components in a nuclear reactor core model

机译:动态跟踪核反应堆堆芯模型中组件的计算机视觉方法

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The Advanced Gas Cooled Reactors (AGRs) are a vital component of the UK's electricity supply system. Their continued reliable operation is supported by safety cases that include assessments of their seismic resilience to their ultimate lifetimes. These assessments are developed via a complex programme of numerical simulations, physical modelling and shaking table testing. A quarter sized physical model representing a single layer of an AGR graphite core was developed at the University of Bristol (UOB) to test the dynamic response for various core array configurations and seismic excitations. The dynamic displacement response is significant, as displaced components may cause local or general distortions that could theoretically affect the channel shapes and the keying system of an AGR core, with implications on the fundamental functions of the reactor. This paper presents a computer vision approach for component displacement mapping. An infrared vision system and a high-resolution video system were employed to track all the components in the model core during a seismic event. The systems have proven to be fit for purpose, being able to map the position of the array components at a resolution of 0.1 mm and to reveal features of response that are useful for understanding the core dynamics. The employed hardware and tracking algorithms are general in nature, hence they are transferrable to other case studies involving multi-body assemblies under dynamic loading.
机译:先进的气冷堆(AGR)是英国电力供应系统的重要组成部分。他们的持续可靠运行得到安全案例的支持,这些安全案例包括对其抗震能力及其最终使用寿命的评估。这些评估是通过复杂的数值模拟,物理建模和振动台测试程序开发的。布里斯托大学(UOB)开发了四分之一大小的物理模型,代表AGR石墨核的单层,以测试各种岩心阵列配置和地震激励的动力响应。动态位移响应非常重要,因为位移的部件可能会导致局部或总体变形,从而可能在理论上影响AGR堆芯的通道形状和键控系统,从而影响反应堆的基本功能。本文提出了一种用于组件位移映射的计算机视觉方法。在地震事件中,采用了红外视觉系统和高分辨率视频系统来跟踪模型核心中的所有组件。该系统已被证明适用于特定目的,能够以0.1 mm的分辨率绘制阵列组件的位置,并揭示有助于理解核心动态的响应特征。所采用的硬件和跟踪算法本质上是通用的,因此它们可以转移到涉及动态载荷下多体装配的其他案例研究中。

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