A theory and analysis of the impact of gas in the dynamical behavior of the molten salt research reactor leading to the computation of the "gas coefficients of reactivity"

Terry Price, Kevin Clarno, Ondrej Chvala
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Abstract

Background Molten salt reactors, and other types of circulating, liquid fueled, nuclear reactors contain a certain amount of gas entrained in their liquid nuclear fuel. This gas induces an effect on the nuclear and dynamical behavior of the reactor as a whole. Gas voids respond to variation in temperature and pressure differently than liquids. When the gas voids in the reactor working fluid expand, the nuclear fuel is pushed from the core. Likewise, when the gas voids contract, more nuclear fuel enters into the core. Methods This paper examines the interplay of gas void fraction and reactivity in a molten salt reactor, and attempts to elucidate the dynamical response of the void fraction and the reactivity of the system to perturbation in system temperature, pressure, and gas quantity. A theory is presented that aims at describing the relationship between reactivity and gas behavior. This theory is then applied to the Molten Salt Research Reactor (MSRR) design, a facility currently under construction at Abilene Christian University campus. Results A result of this paper is the temperature and void fraction parameterized gas coefficients of reactivity for the Molten Salt Research Reactor. Conclusions The presence of voids accounts for 5-30% of the total temperature coefficient of reactivity, demonstrating their non-trivial contribution. Additionally, the study emphasizes the importance of considering gas content in MSR physics, especially in the context of pressure transients and system reactivity during pump trips. The initial system pressure, particularly in designs like the MSRR operating at sub-atmospheric pressures, is crucial due to its influence on reactivity changes during rapid pressure increases.
熔盐研究反应堆动力学行为中气体影响的理论和分析,从而计算 "气体反应系数"
背景 熔盐反应堆和其他类型的循环液体燃料核反应堆的液体核燃料中含有一定量的气体。这些气体会对整个反应堆的核反应和动力学行为产生影响。气体空隙对温度和压力变化的反应与液体不同。当反应堆工作流体中的气体空隙膨胀时,核燃料会被挤出堆芯。同样,当气体空隙收缩时,会有更多核燃料进入堆芯。方法 本文研究了熔盐反应堆中气体空隙率和反应性的相互作用,并试图阐明空隙率和系统反应性对系统温度、压力和气体数量扰动的动态响应。该理论旨在描述反应性与气体行为之间的关系。然后将该理论应用于熔盐研究堆(MSRR)的设计,该设施目前正在阿比林基督教大学校园内建造。结果 本文的一项成果是熔盐研究堆的温度和空隙参数化气体反应系数。结论 空隙的存在占总反应温度系数的 5-30%,这表明空隙的作用并非微不足道。此外,研究还强调了在 MSR 物理学中考虑气体含量的重要性,特别是在泵跳闸期间的压力瞬态和系统反应性方面。初始系统压力,尤其是在亚大气压下运行的 MSRR 等设计中的初始系统压力至关重要,因为它影响着压力快速增加时的反应性变化。
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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