Controller Evaluation for Solar-Latent Thermal Energy Applications

J. Konstantaras, C. Pagkalos, M. Koukou, K. Lymperis, Y. Caouris, M. Vrachopoulos
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Abstract

In this study, the performance of a self-sufficient controller used for a solar-latent heat domestic hot water (DHW) production unit under real-world operating conditions was analyzed. The unit consists of a flat-plate solar collector and a latent heat storage tank. The controller is powered by a small solar panel and governs the charging and discharging of the system, ensuring maximum solar energy absorption, desired hot water temperature, and constant monitoring of the heat-storage tank’s capacity. The system is compact and can be installed on flat and curved roofs as a direct replacement of conventional solar collectors with heat-energy storage tanks. During testing, all internal and external parameters were monitored using a monitoring system that was also used for emulating user profiles. The controller uses self-learning techniques to adjust its parameters and improves its performance by fine-tuning the control equations to the peculiarities of the specific system and installation location. The system was installed and operated for an extended period to allow for the learning equations to train the system. The results for the first, fifth, and twentieth days of operation are presented in this paper. On the 20th operating day, the controller effectively regulated the heat transfer fluid temperature difference in the charging circuit within the efficient band of 2°C–5°C following the irradiance conditions at the testing area. During discharge, the DHW temperature was regulated between 37°C–40°C, with the user’s set temperature as 38°C. The regulation hysteresis time for the DHW temperature regulation was approximately 5 min. The tests were conducted under real-world operating conditions for the charging of the system, while for the discharging, the user profile was emulated using a test rig.
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太阳能潜热应用的控制器评价
在本研究中,分析了太阳能潜热生活热水(DHW)生产装置在实际运行条件下的自给自足控制器的性能。该装置由一个平板太阳能集热器和一个潜热储存罐组成。控制器由一个小型太阳能电池板供电,控制系统的充放电,确保最大的太阳能吸收,所需的热水温度,并持续监测储热罐的容量。该系统结构紧凑,可以安装在平坦和弯曲的屋顶上,直接取代传统的太阳能集热器和热能储存罐。在测试期间,使用一个监控系统监视所有内部和外部参数,该系统也用于模拟用户配置文件。该控制器采用自学习技术来调整参数,并根据具体系统和安装位置的特点对控制方程进行微调,从而提高其性能。系统安装和运行了很长一段时间,以允许学习方程来训练系统。本文介绍了试验第1、5、20天的试验结果。在第20个工作日,控制器根据测试区域辐照度情况,在2℃- 5℃有效区间内有效调节充电回路换热流体温差。放电时,DHW温度在37℃- 40℃之间调节,用户设定温度为38℃。DHW温度调节的调节滞后时间约为5分钟。测试是在系统充电的实际操作条件下进行的,而在放电时,则使用试验台模拟用户配置文件。
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Journal of Nuclear Energy Science and Power Generation Technology
Journal of Nuclear Energy Science and Power Generation Technology Energy-Energy Engineering and Power Technology
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