Fusion-fission混合反应堆设施:功率分析

Sergey V. Bedenko, Igor O. Lutsik, Anton A. Matyushin, Sergey D. Polozkov, Vladimir M. Shmakov, Dmitry G. Modestov, Vadim V. Prikhodko, Andrey V. Arzhannikov
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引用次数: 0

摘要

以建立电站为目标的核动力和热动力领域的研究现状,使我们有可能预测现代电力工业在混合反应堆电站方向上的进一步发展。这种混合系统包括在俄罗斯详细设计的具有反应堆技术的托卡马克,以及具有额外中子源的系统。使用托卡马克和质子能量所需水平的加速器的发电厂将具有非常大的尺寸和功率,这将把它们的工业规模建设推迟到遥远的未来。正在进行的研究旨在发展小发电,并有望在较短的时间内进入能源利用领域。所研究的混合反应堆设施由高温气冷反应堆燃料块的轴对称组件和附加中子的线性等离子体源组成。本文论证了优化等离子体物理、热物理和气体动力学研究的结果,其目的是消除由于d - t中子等离子体源的脉冲操作而在设施增殖部分的体积中形成的功率密度场畸变。利用DOL和PRIZMA程序进行了提高光源“亮度”和模拟其工作模式的研究。利用经过验证的SERPENT和FloEFD软件代码进行热物理优化和气动力计算。计算是在托木斯克理工大学的高性能集群上进行的。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
Fusion-fission hybrid reactor facility: power profiling
The current state of research in the field of nuclear and thermonuclear power aimed at creating power generation plants makes it possible to predict the further development of modern power industry in the direction hybrid reactor power plants. Such hybrid systems include a tokamak with reactor technologies, worked out in detail in Russia, and systems with an additional source of neutrons. Power generation plants using tokamaks and accelerators with the required level of proton energy will be of exceptionally large size and power, which will postpone their construction on an industrial scale to the distant future. The ongoing research is aimed at the development of small generation and has the prospect of entering the field of energy use in a shorter period. The hybrid reactor facility under study consists of an axisymmetric assembly of fuel blocks of a high-temperature gas-cooled reactor and a linear plasma source of additional neutrons. The paper demonstrates the results of optimization plasma-physical, thermophysical and gas-dynamic studies, the purpose of which is to level the distortions of the power density field, which are formed in the volume of the multiplicating part of the facility due to the pulsed operation of the plasma source of D-T-neutrons. The studies on increasing the “brightness” of the source and modeling its operating modes were carried out using the DOL and PRIZMA programs. The thermophysical optimization and gas-dynamic calculations were performed using the verified SERPENT and FloEFD software codes. The calculations were made on a high-performance cluster of the Tomsk Polytechnic University.
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