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首页> 外文期刊>Nuclear Engineering and Design >Dimensional effects in the modelling of MSR dynamics: Moving on from simplified schemes of analysis to a multi-physics modelling approach
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Dimensional effects in the modelling of MSR dynamics: Moving on from simplified schemes of analysis to a multi-physics modelling approach

机译:MSR动力学建模中的尺寸效应:从简化的分析方案转向多物理场建模方法

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摘要

The MSR (Molten Salt Reactor) is one of the six innovative concepts of nuclear reactors envisaged by the GIF-IV (Generation IV International Forum) initiative for the long term evolution of the nuclear technology, in the direction of a more sustainable, safe, proliferation resistant, and economic power generation. The MSR is characterised by a complex and highly non-linear behaviour, which requires a careful investigation, as a consequence of some unusual features like the presence of a fluid fuel and the drift of delayed neutron precursors (DNP) along the primary circuit. In this paper, the MSR primary circuit dynamics is analysed with reference to the MSRE (Molten Salt Reactor Experiment), due to the availability of both a detailed design and experimental data. Numerical models featured by increasing complexity are presented. In particular, a zero-dimensional model is developed, and two other models introducing a one-dimensional discretization for the DNP drift and/or the heat convection are also elaborated. These simplified models are then compared with a more complex model, obtained according to an innovative Multi-Physics Modelling (MPM) approach to the dynamic analysis, where the partial differential equations governing the different phenomena in a core channel are solved in a two-dimensional domain, within the same computational environment. A one-dimensional closure of the primary circuit is also provided. The MPM approach gives a unique insight into the influence of local effects on the overall dynamic behaviour of the reactor, while the variety of developed models allows a systematic investigation about the dimensional effects in the modelling of MSRs. This work represents a starting point in the set-up of a Multi-Physics (MP) simulation tool, suitable for calculations with different degrees of accuracy and physical complexity, and paves the way towards the development of MP models capable of a point-by-point coupling of all the phenomena characterising the MSRs, and the nuclear reactors in general.
机译:MSR(熔融盐反应堆)是GIF-IV(第四代国际论坛)倡议设想的核反应堆的六个创新概念之一,旨在朝着更可持续,更安全,防扩散,经济发电。 MSR的特征是复杂且高度非线性的行为,由于一些不寻常的特征(例如存在流体燃料和延迟中子前体(DNP)沿一次回路的漂移),需要进行仔细的研究。在本文中,由于详细设计和实验数据的可用性,参考MSRE(熔融盐反应堆实验)对MSR初级电路动力学进行了分析。提出了以增加复杂性为特征的数值模型。特别地,开发了零维模型,并且还详细介绍了引入DNP漂移和/或热对流的一维离散化的其他两个模型。然后将这些简化的模型与根据动态分析的创新多物理模型(MPM)方法获得的更复杂的模型进行比较,其中控制核心通道中不同现象的偏微分方程在二维中求解同一计算环境中的域。还提供了一次回路的一维闭合。 MPM方法提供了对局部效应对反应堆整体动态行为的影响的独特见解,而各种已开发的模型允许对MSR建模中的尺寸效应进行系统的研究。这项工作代表了建立多物理(MP)仿真工具的起点,该工具适用于具有不同程度的准确性和物理复杂性的计算,并为开发能够逐点分析的MP模型铺平了道路。 MSRs和核反应堆的所有现象的点耦合。

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