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Last Improvements of the CALMOS Calorimeter Dedicated to Thermal Neutron Flux and Nuclear Heating Measurements inside the OSIRIS Reactor

机译:在Osiris反应器内部致力于热中子磁通和核热量测量的Calmos热量计的最后改进

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摘要

Nuclear heating inside an MTR reactor needs to be known in order to design and to run irradiation experiments which have to fulfill target temperature constraints. To improve the nuclear heating knowledge, an innovative calorimetric system CALMOS has been studied, manufactured and tested for the 70MWth OSIRIS reactor operated by CEA. This device is based on a mobile calorimetric probe which can be inserted in any in-core experimental location and can be moved axially from the bottom of the core to 1000 mm above the core mid-plane. Obtained results and advantages brought by the first CALMOS-1 equipment have been already presented. However, some difficulties appeared with this first version. A thermal limitation in cells did not allow to monitor nuclear heating up to the 70 MW nominal power, and some significant discrepancies were observed at high heating rates between results deduced from the calibration and those obtained by the “zero method”. Taking this feedback into account, the new CALMOS-2 calorimeter has been designed both for extending the heating range up to 13W.g-1 and for improving the “zero method” measurement thanks to the implementation of a 4-wires technique. In addition, the new calorimeter has been designed as a real operational measurement system, well suited to characterize and to follow the radiation field evolution throughout the reactor cycle. To meet this requirement, a programmable system associated with a specific software allows automatic complete cell mobility in the core, the data acquisition and the measurements processing. This paper presents the analysis of results collected during the 2015 comprehensive measurement campaign. The 4-wires technique was tested up to around a 4 W.g-1 heating level and allowed to quantify discrepancies between “zero” and calibration methods. Thermal neutron flux and nuclear heating measurements from CALMOS-1 and CALMOS-2 are compared. Thermal neutron flux distributions, obtained with the Self-Power Neutron Detector suited to the CALMOS-2 calorimetric probe, are compared with those obtained with current devices. This campaign allowed to highlight advantages brought by the human machine interface automation, which deeply refined the profiles definition. Finally, the decay of the reactor residual power after shutdown could be performed after shutdown, demonstrating the ability of such type of calorimeter to follow the heating level whatever the thermohydraulic conditions, forced or natural convection regimes.
机译:需要一个MTR反应器内加热的核,以设计和运行辐照实验,其必须满足目标温度的限制是已知的。为了提高加热核知识,一个创新的比色系统CALMOS进行了研究,制造和用于通过CEA操作的70MWth OSIRIS反应器中测试。这个装置是基于移动量热探针,其可以在任何在核试验位置被插入,并且可以从芯的底部沿轴向移动至1000mm的核心中平面的上方。得到的结果和第一CALMOS-1设备所带来的优势已经被提出。然而,一些困难出现了第一个版本。在小区A的热限制不允许以监测核加热至70 MW额定功率,并在结果之间的高加热速率从校准和那些由“零方法”获得的推断观察到一些显著差异。采取这一反馈到帐户,新CALMOS-2量热仪已经为向上延伸的加热范围13W.g-1和用于“零方法”测量由于提高到4线技术的实施设计这两者。此外,新的热量计已被设计成一个实际操作的测量系统,非常适合于表征和跟随在整个反应器循环的辐射场演变。为了满足这一要求,与特定的软件相关联的可编程系统允许在核心自动完整细胞运动性,数据采集和测量处理。本文介绍了2015年综合测量活动期间收集到的结果进行分析。了4线技术进行了测试高达约4 W.G-1加热水平,并使其量化“零”和校准方法之间的差异。从CALMOS-1和CALMOS-2的热中子通量和核加热测量进行比较。与自供电中子探测器适合于CALMOS-2量热探针获得的热中子通量分布,与当前的设备获得的那些进行比较。这一运动允许通过人机界面自动化,其深度精制的配置文件定义带来亮点的优势。最后,关闭后反应器残余功率衰减可以关闭之后进行,示范这种类型热量计的跟随加热水平无论热工条件下,强制或自然对流机制的能力。

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