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Analysis on the optimum matching of collector and storage size of solar water heating systems in building space heating applications

机译:建筑空间采暖应用中太阳能热水系统集热器和储水器尺寸的最佳匹配分析

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摘要

The overal thermal performance of a solar water heating (SWH) system is significantly affected by the mismatch between the temporal distribution of solar radiation and the heating load. Therefore, a favorable correlation between the collector and storage size should be generated based on the dynamic characteristics of the system. This study focuses on the optimal matching of solar colector area with storage volume for an SWH system (with short-term heat storage capability) for a space heating application. A simplified model of an SWH system based on hourly energy flow is established. System control strategy is integrated into the model in a simple manner without sacrificing computing speed. Based on this model, the combined effect of collector area and storage volume on system thermal performance and economy is analyzed, and a simple procedure for determining the optimal system size is ilustrated. A case study showed that for an SWH system utilized for space heating application, the optimized ratio between storage volume and collector area is dependent on the total collector area of the system, and is dominated by the requirement of overheating prevention. The minimum storage volume for a specific collector area that can prevent the storage tank from being overheated can be adopted as the optimum storage volume for that colector area. The optimum ratio between storage volume and colector area increases as the collector area increases. Therefore, a trade-off between heat collection and heat loss has to be made while attempting to increase solar fraction by improving colector area.
机译:太阳能热水(SWH)系统的总体热性能受太阳辐射的时间分布与加热负载之间的不匹配的影响很大。因此,应基于系统的动态特性在收集器和存储大小之间产生良好的相关性。这项研究集中在空间供热应用的SWH系统(具有短期储热能力)的太阳能收集器面积与储水量的最佳匹配上。建立了基于小时能量流的SWH系统的简化模型。系统控制策略以简单的方式集成到模型中,而不会牺牲计算速度。基于该模型,分析了集热器面积和存储量对系统热性能和经济性的综合影响,并提出了确定最佳系统尺寸的简单程序。案例研究表明,对于用于空间供热应用的SWH系统,存储量和集热器面积之间的最佳比例取决于系统的总集热器面积,并且以防止过热为主导。可以防止储罐过热的特定收集器区域的最小存储容积可以用作该收集器区域的最佳存储容积。随着收集器面积的增加,存储量和收集器面积之间的最佳比率增加。因此,在试图通过改善收集面积来增加太阳能分数的同时,必须在热收集和热损失之间进行权衡。

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  • 来源
    《建筑模拟(英文版)》 |2018年第3期|549-560|共12页
  • 作者单位

    Department of Building Science, School of Architecture, Tsinghua University, Beijing 100084, China;

    Chifeng Heran Energy-Saving Science and Technology Co., LTD, Xincheng District, Chifeng 024000, Inner Mongolia, China;

    Department of Building Science, School of Architecture, Tsinghua University, Beijing 100084, China;

    Department of Building Science, School of Architecture, Tsinghua University, Beijing 100084, China;

  • 收录信息 中国科学引文数据库(CSCD);
  • 原文格式 PDF
  • 正文语种 eng
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