共晶铅铋合金在核聚变反应堆冷却系统中的应用前景

IF 0.5 4区 物理与天体物理 Q4 PHYSICS, NUCLEAR Physics of Atomic Nuclei Pub Date : 2025-01-23 DOI:10.1134/S1063778824130155
N. A. Deryabina, B. V. Kuteev, A. Yu. Pashkov, Yu. S. Shpanskiy
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引用次数: 0

摘要

在DEMO聚变反应堆以及聚变中子源FNS设施的设计中,作为备选方案之一,假定三回路冷却系统将使用液态金属包层。一次回路的液态锂将中间热交换器中的热量传递给第二回路的液态钠,后者再将热量传递给蒸汽发生器中第三回路的水。考虑在第二回路中使用“中性”冷却剂的可能性——一种共晶铅铋合金,它不与第三回路中的液态锂或水发生化学反应,这使得排除液态锂或钠与水接触成为可能。对中间液体锂共晶合金热交换器进行了初步计算,结果表明,使用这种合金可以在相同数量的中间热交换器的情况下冷却聚变反应堆,而不会显著增加中间热交换器的尺寸。
本文章由计算机程序翻译,如有差异,请以英文原文为准。

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Eutectic Lead–Bismuth Alloy as a Possible Coolant in the Fusion Reactor Cooling System

In the design of the DEMO fusion reactor, as well as the facility of a fusion neutron source FNS, as one of the options, it is assumed that a three-loop cooling system will use a blanket of liquid metals. Liquid lithium from the primary loop transfers heat in intermediate heat exchangers to liquid sodium of the second loop, which in turn transfers heat to the water of the third loop in the steam generator. The possibility is considered of using a “neutral” coolant in the second loop—a eutectic lead–bismuth alloy, which does not chemically interact with either liquid lithium or water in the third loop, which makes it possible to exclude contact of liquid lithium or sodium with water. A preliminary calculation of the intermediate liquid lithium–eutectic alloy heat exchanger has been performed, and it is shown that the use of this alloy will allow for the cooling of the fusion reactor with the same number of intermediate heat exchangers and without a significant increase in their size.

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来源期刊
Physics of Atomic Nuclei
Physics of Atomic Nuclei 物理-物理:核物理
CiteScore
0.60
自引率
25.00%
发文量
56
审稿时长
3-6 weeks
期刊介绍: Physics of Atomic Nuclei is a journal that covers experimental and theoretical studies of nuclear physics: nuclear structure, spectra, and properties; radiation, fission, and nuclear reactions induced by photons, leptons, hadrons, and nuclei; fundamental interactions and symmetries; hadrons (with light, strange, charm, and bottom quarks); particle collisions at high and superhigh energies; gauge and unified quantum field theories, quark models, supersymmetry and supergravity, astrophysics and cosmology.
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