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Optimal Control of Multigroup Neutron Fission Systems

机译:多组中子裂变系统的最优控制

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This article considers the optimal control of nuclear fission reactors modeled by parabolic partial differential equations. The neutrons are divided into fast and thermal groups with two equations describing their interaction and fission, while a third equation describes the temperature in the reactor. The coefficient for the fission and absorption of the thermal neutron is assumed to be controlled by a function through the use of control rods in the reactor. The object is to maintain a target neutron flux shape, while a desired power level and adjustment costs are taken into consideration. A nonlinear optimality system of six equations is deduced, characterizing the optimal control. An iterative procedure is shown to contract toward the solution of the optimality system in small time intervals. The theory is extended to include the effect of other fission products, leading to coupled ordinary and partial differential equations. Numerical experiments are also included, suggesting directions for further research.
机译:本文考虑了以抛物线偏微分方程为模型的核裂变反应堆的最优控制。将中子分为快和热两类,用两个方程式描述它们的相互作用和裂变,而第三个方程式描述反应堆中的温度。假定通过使用反应堆中的控制棒,通过函数来​​控制热中子的裂变和吸收系数。目的是保持目标中子通量形状,同时考虑期望的功率水平和调整成本。推导了由六个方程组成的非线性最优系统,描述了最优控制。迭代过程显示出在较小的时间间隔内朝向最优系统的解收缩。该理论被扩展到包括其他裂变产物的影响,从而导致耦合的常微分方程和偏微分方程。数值实验也包括在内,为进一步研究提供了方向。

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