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储能系统技术 ★ 5.0

新型环形阵列聚光太阳能系统与含相变材料太阳能炉的数值、解析与实验热力学分析

Numerical, analytical and experimental thermodynamic analysis of the design of an innovative ring array concentrator solar system with solar furnace containing phase change material

作者 Ali KemalÖzcan · Cevdet Demirtaşb† · Betül Saraç
期刊 Energy Conversion and Management
出版日期 2025年1月
卷/期 第 344 卷
技术分类 储能系统技术
相关度评分 ★★★★★ 5.0 / 5.0
关键词 Inorganic salts suitable for heat storage are examined.
语言:

中文摘要

摘要 可靠且可持续的可再生能源需求不断增长,提高了对高效热能储存的需求。本研究提出了一种新颖的集成环形阵列聚光器(RAC)系统的太阳能炉——该结构在现有文献中鲜有研究,并通过实验与理论方法结合,探究了利用相变材料(PCM)实现高温热能存储的性能。开发了两种太阳能储热装置:模型I采用平板接收器,模型II采用带翅片的圆柱形接收器以增强传热性能。新开发的RAC系统在土耳其特拉布宗省进行了实验测试,同时通过解析方法确定了该地区的瞬时太阳辐照度。在10小时运行期间,模型I成功熔化了0.7 kg的太阳盐和3.8 kg的Hitec盐;相比之下,改进后的模型II系统在7小时内实现了18 kg Hitec盐的完全熔化,并达到平均温度455 K。实验与数值结果表明,RAC系统的光学效率为58.8%,接收器效率为64.3%。太阳能炉的最大热效率为39%(不确定度为3.4%),最大㶲效率为20%(不确定度为1.3%)。两种炉型的实验测量结果与理论预测之间表现出良好的一致性。本研究通过将先进的RAC光学系统与基于相变材料的热能存储技术相结合,提出了一种新颖且集成化的太阳能热利用系统,显著提升了储热性能,减少了二氧化碳排放,并具备适应不同环境条件的能力,对可持续能源技术的发展具有重要意义。

English Abstract

Abstract The rising demand for reliable and sustainable renewable energy has increased the need for efficient thermal energy storage. This study introduces a novel solar furnace integrated with a Ring Array Concentrator (RAC) system—rarely explored in literature—and investigates high-temperature thermal storage using Phase Change Materials (PCM) through experimental and theoretical methods. Two solar storage units were developed: Model-I with a flat receiver and Model-II with finned cylindrical receiver for enhanced heat transfer. The newly developed RAC system was tested experimentally in the Trabzon province of Turkiye. Instantaneous solar irradiation for the region was also determined analytically. During a 10-hour operating period, Model-I successfully melted 0.7 kg of solar salt and 3.8 kg of Hitec salt. In contrast, the enhanced Model-II system achieved full melting of 18 kg of Hitec salt within 7 h, reaching an average temperature of 455 K. Experimental and numerical results revealed that the RAC system achieved an optical efficiency of 58.8 %, with the receiver efficiency calculated at 64.3 %. The maximum thermal efficiency and exergy efficiency of the solar furnace are determined to be 39 % with a 3.4 % uncertainty and 20 % with a 1.3 % uncertainty, respectively. A strong agreement was observed between experimental measurements and theoretical predictions for both furnace models. This work offers a novel and integrated solar thermal system by combining advanced RAC optics with PCM-based thermal storage, making a significant contribution to sustainable energy technologies through improved heat storage performance, reduced CO 2 emissions, and adaptability to varying environmental conditions.
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SunView 深度解读

该环形阵列聚光器结合相变储热技术对阳光电源ST系列储能系统具有重要启示。研究中64.3%的接收器效率和39%热效率为光热-储能耦合系统提供参考。相变材料高温储热(455K)技术可与PowerTitan储能系统形成互补,优化光伏-光热混合储能方案。翅片圆柱接收器的强化传热设计思路可应用于储能PCS热管理优化,提升系统循环效率。该集成方案为iSolarCloud平台的多能互补智能调度提供新场景支持。