抛物线槽
迷惑
热能储存
核工程
环境科学
熔盐
电力
热阻
材料科学
太阳能
储能
计算流体力学
集中太阳能
电势能
热的
太阳能
机械工程
功率(物理)
工艺工程
工程类
电气工程
热力学
航空航天工程
物理
冶金
作者
Zahra Mahdi,Phani Srujan Merige,Ricardo Alexander Chico Caminos,Pascal Schmitz,Ulf Herrmann,Cristiano Teixeira Boura,Mark Schmitz,Hans Gielen,Yibekal Gedle,Jürgen Dersch
摘要
Concentrated Solar Power (CSP) systems are able to store energy cost-effectively in their integrated thermal energy storage (TES). By intelligently combining Photovoltaics (PV) systems with CSP, a further cost reduction of solar power plants is expected, as well as an increase in dispatchability and flexibility of power generation. PV-powered Resistance Heaters (RH) can be deployed to raise the temperature of the molten salt hot storage from 385 °C up to 565 °C in a Parabolic Trough Collector (PTC) plant. To avoid freezing and decomposition of molten salt, the temperature distribution in the electrical resistance heater is investigated in the present study. For this purpose, a RH has been modeled and CFD simulations have been performed. The simulation results show that the hottest regions occur on the electric rod surface behind the last baffle. A technical optimization was performed by adjusting three parameters: Shell-baffle clearance, electric rod-baffle clearance and number of baffles. After the technical optimization was carried out, the temperature difference between the maximum temperature and the average outlet temperature of the salt is within the acceptable limits, thus critical salt decomposition has been avoided. Additionally, the CFD simulations results were analyzed and compared with results obtained with a one-dimensional model in Modelica.
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