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A multi-physics integrated approach to breeding blanket modelling and design

机译:一种多物理场综合方法,用于繁殖毯子建模和设计

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Often, for the design of a component, several kinds of analyses are needed. Even more frequently, the different fields of study, to be taken into account for the design verification, have to be examined minutely until the final results are satisfying. Furthermore, when geometry modifications are required, for instance to fulfill the component functions, the analyses cycle has to be restarted and an iterative process has to be carried out. This procedure may be time-consuming and herald of errors, in particular if it is demanded to the human activity. Therefore, it is more convenient for the scientific community to adopt a numerical tool that can combine various computational codes. On the base of these considerations, one of the greatest and important challenges for the new design tools is to demonstrate the capability for performing multi-physics analysis in an integrated way. This is a prerequisite, above all, when the component is part of a fusion utility like the Breeding Blanket (BB) in European Demonstration Fusion Power Reactor (DEMO). Indeed, for its design, several fields of analysis are involved such as the neutronics, thermal-hydraulics and the thermo-mechanics.The present work outlines a procedure for their coupling. The main characteristics of this new multi-physics integrated approach are (i) the use of the well-known commercial software, widely employed in the BB design, as well as (ii) the employment of the same geometry definition for all the phenomena studied. An effective application of the aforementioned approach to the pre-conceptual design of the Helium Cooled Pebble Bed (HCPB) and of the Water Cooled Lithium Lead (WCLL) is also provided in this paper. Finally, the achieved results are herewith reported and critically discussed.
机译:通常,对于组件的设计,需要进行多种分析。甚至更频繁地,必须仔细检查不同的研究领域,以进行设计验证,直到最终结果令人满意为止。此外,当需要修改几何形状(例如实现零部件功能)时,必须重新开始分析循环,并且必须执行迭代过程。此过程可能很耗时且预示着错误,特别是如果人类活动需要这样做的话。因此,对于科学界来说,采用可以组合各种计算代码的数值工具更为方便。基于这些考虑,新设计工具面临的最大和重要挑战之一就是证明以集成方式进行多物理场分析的能力。首先,当组件是诸如欧洲示范聚变动力堆(DEMO)中的育种毯(BB)之类的聚变实用程序的一部分时,这是先决条件。的确,对于其设计,涉及多个分析领域,例如中子学,热工液压学和热力学。本工作概述了它们的耦合过程。这种新的多物理场集成方法的主要特征是(i)使用广泛用于BB设计的著名商业软件,以及(ii)对所有研究的现象采用相同的几何定义。本文还提供了上述方法在氦冷却卵石床(HCPB)和水冷锂铅(WCLL)的概念设计中的有效应用。最后,报告并严格讨论了取得的成果。

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