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The importance of uncertainties in the ROP detector layout design process for CANDU reactors

机译:CANDU反应堆ROP检测器布局设计过程中不确定性的重要性

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In CANDU~? reactor design, the regional overpower protection (ROP) systems protect the reactor against overpower in the fuel which could reduce the safety margin-to-dryout. The increase in fuel power could be caused by a localized power peaking within the core (for example, as a result of a certain reactivity device configuration) or a general increase in the core power level during a slow-loss-of-regulation (SLOR) event. This overpower could lead to fuel sheath dryout. In the CANDU~? 600 MW (CANDU 6) design, there are two ROP systems in the core, one for each fast-acting shutdown system. Each ROP system includes a number of fast-responding, self-powered flux detectors suitably distributed throughout the core within vertical and horizontal assemblies. A new methodology for designing the detector layout for the ROP system, called the DETPLASA algorithm, has been developed recently. This method utilizes the simulated annealing (SA) technique to optimize the placement of the detectors in the core. The evaluation of the trip setpoint (TSP) corresponding to each detector layout configuration (i.e., each history in the SA algorithm) is performed probabilistically using the ROVER-F code. In this evaluation, there are uncertainties related to both the detector components (i.e., related to the margin-to-trip) and to the fuel channel components (i.e., related to the margin-to-dryout). In this paper, the importance of these uncertainties on the outcome of the detector layout optimization process is evaluated. Some parametric studies have been performed to quantify the effect of uncertainties on the resulting detector layout. Two types of investigations have been performed. First, a given detector layout will be used to explicitly determine the effect of changing the uncertainty values. In this study, 343 sets of uncertainty values are used to produce the corresponding TSP values. The variation in the TSP values is analyzed. Second, three sets of uncertainty values (a subset of uncertainties from the first study) are used in independent DETPLASA executions. The resulting detector layout configurations will be examined to observe the effect of these uncertainties on the final design. Results from these investigations are presented in this paper.
机译:在坎杜〜在反应堆设计中,区域超功率保护(ROP)系统可保护反应堆免受燃料中的功率过大的影响,因为燃料过功率会降低干馏的安全裕度。燃料功率的增加可能是由于堆芯内的局部功率达到峰值(例如,由于某种反应性设备配置所致),或者是由于缓慢调节损失(SLOR)期间堆芯功率水平的总体增加所致)事件。这种过大的功率可能导致燃料护套变干。在坎杜〜 600 MW(CANDU 6)设计,核心中有两个ROP系统,每个快速关闭系统一个。每个ROP系统都包括许多快速响应的自供电磁通检测器,这些检测器适当地分布在垂直和水平组件中的整个磁芯中。最近开发了一种新的用于设计ROP系统探测器布局的方法,称为DETPLASA算法。该方法利用模拟退火(SA)技术来优化检测器在堆芯中的放置。对应于每个检测器布局配置(即SA算法中的每个历史记录)的跳闸设定点(TSP)的评估是使用ROVER-F代码概率进行的。在该评估中,存在与检测器组件(即,与行程余量有关)和燃料通道组件(即,与干馏余量有关)的不确定性。在本文中,评估了这些不确定性对探测器布局优化过程结果的重要性。已经进行了一些参数研究,以量化不确定性对所得检测器布局的影响。已经进行了两种类型的调查。首先,给定的检测器布局将用于显式确定更改不确定性值的影响。在这项研究中,使用343组不确定性值来生成相应的TSP值。分析了TSP值的变化。其次,在独立的DETPLASA执行中使用了三组不确定性值(第一项研究的不确定性的子集)。将检查最终的探测器布局配置,以观察这些不确定性对最终设计的影响。这些调查的结果将在本文中介绍。

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