Morgan Bryan William, Van Zile Matthew, Sabharwall Piyush, Burger Milos, Jovanovic Igor
Department of Nuclear Engineering and Radiological Sciences, The University of Michigan, Ann Arbor, Michigan 48109, USA.
Nuclear Reactor Laboratory, The Ohio State University, Columbus, Ohio 43212, USA.
Rev Sci Instrum. 2021 Oct 1;92(10):105107. doi: 10.1063/5.0066069.
The use of optical instrumentation in advanced nuclear fission systems, such as molten salt reactors, liquid metal-cooled reactors, and high-temperature gas-cooled reactors, has the potential to enhance reactor safety and economic performance through in situ and online measurement of reactor conditions. Selection of suitable optical components, such as optical windows and fibers, is essential for operation of optical instrumentation in intense radioactive and thermal environments inherent to nuclear reactor systems. We present the development and performance of a self-contained and mobile post-irradiation examination system for rapid characterization of the optical properties of materials. The instrument combines linear absorption and nanosecond Z-scan modules in a compact, relocatable design. The system mobility allows for the evaluation of optical samples at the site of irradiation, minimizing the delay between extraction from the irradiation site and optical characterization. This provides nearly real-time information on the material performance under simultaneous irradiation and thermal annealing, simulating the relevant conditions for the use of those components in nuclear power systems.
在先进的核裂变系统中,如熔盐反应堆、液态金属冷却反应堆和高温气冷反应堆,使用光学仪器有潜力通过对反应堆状况进行原位和在线测量来提高反应堆安全性和经济性能。选择合适的光学部件,如光学窗口和光纤,对于在核反应堆系统固有的强放射性和热环境中运行光学仪器至关重要。我们展示了一种用于快速表征材料光学特性的独立式移动后辐照检查系统的开发和性能。该仪器将线性吸收和纳秒Z扫描模块集成在紧凑、可重新安置的设计中。系统的移动性允许在辐照现场对光学样品进行评估,最大限度地减少从辐照现场取出样品到进行光学表征之间的延迟。这提供了关于材料在同时辐照和热退火条件下性能的近乎实时的信息,模拟了这些部件在核电系统中使用的相关条件。