Testing of uncovered solar thermal collectors under dynamic conditions and identification of performance parameters - for nocturnal radiative cooling applications

Nermeen Abdelnour , Reiner Braun , Herena Torio , Ursula Eicker
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引用次数: 1

Abstract

This paper presents the first part of a research-work conducted at the University of Applied Sciences (HFT-Stuttgart). The aim of the research was to investigate the potential of low-cost renewable energy systems to reduce the energy demand of the building sector in hot and dry areas. Radiative cooling to the night sky represents a low-cost renewable energy source. The dry desert climate conditions promote radiative cooling applications. The system technology adopted in this work is based on uncovered solar thermal collectors integrated into the building's hydronic system. By implementing different control strategies, the same system could be used for cooling as well as for heating applications. This paper focuses on identifying the collector parameters which are required as the coefficients to configure such an unglazed collector for calibrating its mathematical model within the simulation environment. The parameter identification process implies testing the collector for its thermal performance. This paper attempts to provide an insight into the dynamic testing of uncovered solar thermal collectors (absorbers), taking into account their prospective operation at nighttime for radiative cooling applications. In this study, the main parameters characterizing the performance of the absorbers for radiative cooling applications are identified and obtained from standardized testing protocol. For this aim, a number of plastic solar absorbers of different designs were tested on the outdoor test-stand facility at HFT-Stuttgart for the characterization of their thermal performance. The testing process was based on the quasi-dynamic test method of the international standard for solar thermal collectors EN ISO 9806. The test database was then used within a mathematical optimization tool (GenOpt) to determine the optimal parameter settings of each absorber under testing. Those performance parameters were significant to compare the thermal performance of the tested absorbers. The coefficients (identified parameters) were used then to plot the thermal efficiency curves of all absorbers, for both the heating and cooling modes of operation. Based on the intended main scope of the system utilization (heating or cooling), the tested absorbers could be benchmarked. Hence, one of those absorbers was selected to be used in the following simulation phase as was planned in the research-project.

动态条件下未盖太阳能集热器的试验和性能参数的鉴定。夜间辐射冷却应用
本文介绍了应用科学大学(HFT Stuttgart)进行的研究工作的第一部分。这项研究的目的是调查低成本可再生能源系统在减少炎热干燥地区建筑部门能源需求方面的潜力。对夜空的辐射冷却是一种低成本的可再生能源。干燥的沙漠气候条件促进了辐射冷却的应用。这项工作中采用的系统技术是基于未覆盖的太阳能集热器,该集热器集成到建筑的水力系统中。通过实施不同的控制策略,同一系统可以用于冷却和加热应用。本文的重点是确定收集器参数,这些参数是配置这种无釉收集器所需的系数,用于在模拟环境中校准其数学模型。参数识别过程意味着测试收集器的热性能。本文试图深入了解未覆盖的太阳能集热器(吸收器)的动态测试,考虑到它们在夜间辐射冷却应用中的预期运行。在这项研究中,确定了表征辐射冷却应用吸收器性能的主要参数,并从标准化测试协议中获得。为此,在斯图加特HFT的室外试验台上对许多不同设计的塑料太阳能吸收器进行了测试,以表征其热性能。测试过程基于太阳能集热器国际标准EN ISO 9806的准动态测试方法。然后在数学优化工具(GenOpt)中使用测试数据库来确定每个被测吸收器的最佳参数设置。这些性能参数对于比较测试吸收器的热性能具有重要意义。然后使用系数(确定的参数)绘制所有吸收器在加热和冷却操作模式下的热效率曲线。根据系统使用的预期主要范围(加热或冷却),可以对测试的吸收器进行基准测试。因此,按照研究项目的计划,选择了其中一种吸收器用于以下模拟阶段。
本文章由计算机程序翻译,如有差异,请以英文原文为准。
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