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CFD analysis and optimization of a liquid lead-bismuth loop target for ISOL facilities

机译:ISOL设施的液态铅铋回路靶材的CFD分析和优化

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In the context of the forthcoming next generation of Radioactive Ion Beams (RIBs) facilities based on an Isotope Separation On Line (ISOL) method, the development of production targets capable of dissipating the high power deposited by the primary beam is a major challenge. The concept of a high-power target based on a liquid Pb-Bi loop incorporating a heat-exchanger and a diffusion chamber was proposed within EURISOL DS and is being developed within the L1EBE1 project. Due to the non-static character of the target, specific hydrodynamics issues are of concern. In this paper, these issues are studied mostly based on three-dimensional (3D) Computational Fluid Dynamics analysis of the flow of the Lead Bismuth Eutectic (LBE) target, resulting in optimized designs. The concept and hydrodynamic challenges of generating RIBs from a liquid-metal-loop target irradiated with a high-power primary beam are presented. The optimization of the target design has been conducted keeping in mind the need for a fast and efficient release of short-lived isotopes. This study shows that approximately 100 ms after the proton pulse the irradiated liquid-metal is entirely and uniformly evacuated from the irradiation volume and spread in a shower of small droplets (100-μm radii), in order to reduce the diffusion length of isotopes. Solutions to deal with the typical cavitation risk due to the presence of low-pressure zones in the liquid have also been found and simulated.
机译:在即将到来的基于同位素在线分离(ISOL)方法的下一代放射性离子束(RIB)设施的背景下,开发能够耗散一次束沉积的高功率的生产目标是一项重大挑战。在EURISOL DS中提出了基于结合了热交换器和扩散室的液态Pb-Bi回路的大功率靶的概念,该概念正在L1EBE1项目中进行开发。由于目标的非静态特性,因此需要关注特定的流体动力学问题。本文主要基于铅铋共晶(LBE)靶的流动的三维(3D)计算流体动力学分析来研究这些问题,从而优化设计。提出了从高功率主光束辐照下的液态金属环靶生成RIB的概念和流体动力学挑战。考虑到需要快速有效地释放短寿命同位素,对目标设计进行了优化。这项研究表明,在质子脉冲后大约100毫秒,被辐照的液态金属从辐照量中完全而均匀地排空,并散布在小液滴(半径为100μm)的簇状喷淋中,以减小同位素的扩散长度。还已经找到并模拟了解决由于液体中存在低压区而导致的典型气蚀风险的解决方案。

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