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Power Control of SAFE Reactor Using Fuzzy Logic

机译:基于模糊逻辑的SAFE反应堆功率控制

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Controlling the 100 kW SAFE (Safe Affordable Fission Engine) reactor consists of design and implementation of a fuzzy logic process control system to regulate dynamic variables related to nuclear system power. The first phase of development concentrates primarily on system power startup and regulation, maintaining core temperature equilibrium, and power profile matching. This paper discusses the experimental work performed in those areas. Nuclear core power from the fuel elements is simulated using resistive heating elements while heat rejection is processed by a series of heat pipes. Both axial and radial nuclear power distributions are determined from neutronic modeling codes. The axial temperature profile of the simulated core is matched to the nuclear power profile by varying the resistance of the heating elements. The SAFE model establishes radial temperature profile equivalence by establishing 32 control zones as the nodal coordinates. Control features also allow for slow warm up, since complete shutoff can occur in the heat pipes if heat-source temperatures drop/rise below a certain minimum value, depending on the specific fluid and gas combination in the heat pipe. The entire system is expected to be self-adaptive, i.e., capable of responding to long-range changes in the space environment. Particular attention in the development of the fuzzy logic algorithm shall ensure that the system process remains at set point, virtually eliminating overshoot on start-up and during in-process disturbances. The controller design will withstand harsh environments and applications where it might come in contact with water, corrosive chemicals, radiation fields, etc.
机译:控制100 kW SAFE(可负担得起的裂变发动机)反应堆的过程包括模糊逻辑过程控制系统的设计和实施,以调节与核动力系统有关的动态变量。开发的第一阶段主要集中在系统电源启动和调节,维持核心温度平衡以及电源配置文件匹配上。本文讨论了在这些领域中进行的实验工作。使用电阻加热元件模拟燃料元件的核芯功率,同时通过一系列热管处理散热。轴向和径向核动力分布均由中子模型代码确定。通过改变加热元件的电阻,模拟芯的轴向温度曲线与核电曲线相匹配。 SAFE模型通过建立32个控制区作为节点坐标来建立径向温度分布等值。控制功能还允许缓慢预热,因为如果热源温度下降/上升到某个最小值以下(取决于热管中的特定流体和气体组合),则可能会在热管中完全关闭。期望整个系统是自适应的,即能够对空间环境的长期变化做出响应。在开发模糊逻辑算法时应特别注意,以确保系统过程保持在设定点,实际上消除了启动和过程中的干扰时的过冲。控制器设计将承受恶劣的环境和可能与水,腐蚀性化学物质,辐射场等接触的应用。

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