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Scaling effects of a novel solar receiver for a micro gas-turbine based solar dish system

机译:新型基于微型燃气轮机的太阳能接收器的太阳能接收器的缩放效果

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Laboratory-scale component testing in dedicated high-flux solar simulators is a crucial step in the development and scale-up of concentrating solar power plants. Due to different radiative boundary conditions available in high-flux solar simulators and full-scale power plants the temperature and stress profiles inside the investigated receivers differ between these two testing platforms. The main objective of this work is to present a systematic scaling methodology for solar receivers to guarantee that experiments performed in the controlled environment of high-flux solar simulators yield representative results when compared to full-scale tests. In this work the effects of scaling a solar air receiver from the integration into the OMSoP full-scale micro gas-turbine based solar dish system to the KTH high-flux solar simulator are investigated. Therefore, Monte Carlo ray-tracing routines of the solar dish concentrator and the solar simulator are developed and validated against experimental characterization results. The thermo-mechanical analysis of the solar receiver is based around a coupled CFD/FEM-analysis linked with stochastic heat source calculations in combination with ray-tracing routines. A genetic multi-objective optimization is performed to identify suitable receiver configurations for testing in the solar simulator which yield representative results compared to full-scale tests. The scaling quality is evaluated using a set of performance and scaling indicators. Based on the results a suitable receiver configuration is selected for further investigation and experimental evaluation in the KTH high-flux solar simulator.
机译:在专用高通量太阳能模拟器中进行实验室规模的组件测试,是发展和扩大集中式太阳能发电厂的关键一步。由于高通量太阳能模拟器和大型电厂中可用的辐射边界条件不同,这两个测试平台之间的受调查接收机内部的温度和应力曲线不同。这项工作的主要目的是为太阳能接收器提供一种系统的缩放方法,以确保与全尺寸测试相比,在高通量太阳能模拟器的受控环境中进行的实验能产生代表性的结果。在这项工作中,研究了从集成到基于OMSoP的全尺寸微型燃气轮机的太阳能碟系统到KTH高通量太阳能模拟器中缩放太阳能空气接收器的效果。因此,开发了太阳能碟形聚光器和太阳能模拟器的蒙特卡洛射线追踪程序,并针对实验表征结果进行了验证。太阳能接收器的热机械分析基于耦合的CFD / FEM分析,结合了随机热源计算和射线跟踪例程。进行了遗传多目标优化,以识别合适的接收器配置,以便在太阳模拟器中进行测试,与全面测试相比,该结果可得出代表性的结果。使用一组性能和缩放指标评估缩放质量。根据结果​​,选择合适的接收器配置,以便在KTH高通量太阳模拟器中进行进一步研究和实验评估。

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