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Superimpose signal processing method for micro-scale thermal imaging of solar salts at high temperature

机译:用于高温下太阳能盐的微尺度热成像的叠加信号处理方法

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The global interest in energy applications activates the advanced study about the molten salts in the usage of fluids in the power cycle, such as for transport and heat storage in solar power facilities. However, the basic properties of molten salts show a general scattering in characterization especially in thermal properties. It is suggested that new studies are required on the measurement of thermal properties of solar salts using recent technologies. In this study, micro-scale heat transfer and phase change in molten salts are presented using our originally developed device: the micro-bolometer Infrared focal plane arrays (IR FPA) measuring system is a portable type instrument, which is re-designed to measure the thermal phenomena in high temperature up to 700 °C or higher. The superimpose system is newly setup adjusted to the signal processing in high temperature to realize the quantitative thermal imaging, simultaneously. The portable type apparatus for a quantitative micro-scale thermography using a micro-bolometer has been proposed based on an achromatic lens design to capture a micro-scale image in the long-wave infrared, a video signal superimposing for the real time emissivity correction, and a pseudo acceleration of a timeframe. Combined with the superimpose technique, the micro-scale thermal imaging in high temperature is achieved and the molten flows of the solar salts, sodium nitrate, and potassium nitrate are successfully observed. The solar salt, the mixture of sodium nitrate and potassium nitrate, shows a different shape of exothermic heat front morphology in the lower phase transition (solidification) temperature than the nitrates on cooling. The proposed measuring technique will be utilized to accelerate the screening step to determine the phase diagram and the eutectics of the multiple mixtures of candidate molten salts, which may be used as heat transport medium from the concentrated solar power to a processing plant for thermal energy storage.
机译:全球对能源应用的兴趣激活了关于电力循环中的流体的熔融盐的高级研究,例如在太阳能电力设施中运输和蓄热。然而,熔盐的基本性质表明表征特别是在热性质中的一般散射。建议采用最近的技术测量太阳能盐的热性能所需的新研究。在本研究中,使用我们最初开发的装置提出了熔盐的微观传热和相变性:微电位器红外焦平面阵列(IR FPA)测量系统是一种便携式仪器,可重新设计测量高温高达700°C或更高的热现象。叠加系统是新设置的调整到高温中的信号处理,以同时实现定量热成像。基于消色差透镜设计,提出了用于定量微级热成像的便携式型装置,用于捕获长波红外的微级图像,是实时发射率校正的视频信号叠加,以及时间框架的伪加速度。结合叠加技术,实现了高温的微观热成像,并且成功地观察到太阳能盐,硝酸钠和硝酸钾的熔融流动。太阳能盐,硝酸钠和硝酸钾的混合物,显示出比硝酸盐在冷却的较低相变(凝固)温度下的不同形状的放热热前形态。所提出的测量技术将用于加速筛选步骤,以确定候选熔盐多个混合物的相图和对照,其可以用作来自浓缩太阳能的热传输介质到热能储存的加工厂。

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