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A CPFD simulation on the particle flow characteristics in a packed moving bed solar receiver with an added insert

机译:填充床太阳能接收器中颗粒流动特性的CPFD仿真,具有添加插入件

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摘要

An alternative particle receiver using downward particle flow in a quartz tube with a conical hopper at the bottom has been evaluated to eliminate particle loss associated with directly irradiated solid particle solar receivers (SPSR). A computational particle fluid dynamic (CPFD) simulation is performed to investigate the particle flow characteristics in the packed moving bed quartz tube SPSR with embedded insert. Whether an insert is added in the tube or not, a consistent regular pattern is achieved for the time-varied average solid fractions at different packed heights in the tube. However, inconsistent distribution of axial particle velocity on the crosssectional area is obtained, and the particle layer thickness affects the uniformity of the axial particle velocities. The thinner particle layer leads to a uniform distribution of axial particle velocities, and the average axial particle velocity is higher than that with a thick particle layer, which can enhance the operating safety and heat transfer of the solar receiver according to the previous investigations. In this study, the particle layer thickness of 5 mm is recommended according to the CPFD simulation. In addition, the radial movement in the semi-annular flow channel is negligible if sufficient particles are provided by the top particle dispenser. The conclusions in this cold state numerical study can provide the basis for the establishment of a further accurate thermal model for the solar receiver.
机译:已经评估了使用底部的锥形料斗的石英管中使用向下颗粒流动的替代粒子接收器,以消除与直接照射的固体颗粒太阳能接收器(SPSR)相关的颗粒损失。进行计算颗粒流体动力学(CPFD)模拟以研究嵌入式插入件的填充运动床石英管SPSR中的颗粒流动特性。无论是插入件是否在管中添加,在管中不同填充高度处的时变平均固体级分也实现了一致的规则图案。然而,获得了横截面区域上的轴向粒子速度的不一致分布,颗粒层厚度影响轴向粒子速度的均匀性。较薄的颗粒层导致轴向粒子速度的均匀分布,平均轴向粒径高于厚颗粒层,这可以根据先前的研究提高太阳能接收器的操作安全性和传热。在该研究中,根据CPFD仿真建议使用5mm的颗粒层厚度。另外,如果顶部颗粒分配器提供足够的颗粒,则半环形流动通道中的径向运动可以忽略不计。在这种冷态数值研究中的结论可以为建立太阳能接收器的进一步准确的热模型提供基础。

著录项

  • 来源
    《Solar Energy》 |2021年第8期|1144-1159|共16页
  • 作者单位

    Huazhong Univ Sci & Technol Sch Energy & Power Engn Wuhan 430074 Peoples R China|Huazhong Univ Sci & Technol State Key Lab Coal Combust Wuhan 430074 Peoples R China|Chinese Acad Sci Key Lab Solar Thermal Energy & Photovolta Syst 6 Beiertiao Beijing 100190 Peoples R China|Chinese Acad Sci Inst Elect Engn 6 Beiertiao Beijing 100190 Peoples R China|Univ Chinese Acad Sci 6 Beiertiao Beijing 100190 Peoples R China|Beijing Engn Res Ctr Solar Thermal Power 6 Beiertiao Beijing 100190 Peoples R China;

    Chinese Acad Sci Key Lab Solar Thermal Energy & Photovolta Syst 6 Beiertiao Beijing 100190 Peoples R China|Chinese Acad Sci Inst Elect Engn 6 Beiertiao Beijing 100190 Peoples R China|Univ Chinese Acad Sci 6 Beiertiao Beijing 100190 Peoples R China|Beijing Engn Res Ctr Solar Thermal Power 6 Beiertiao Beijing 100190 Peoples R China;

    Chinese Acad Sci Key Lab Solar Thermal Energy & Photovolta Syst 6 Beiertiao Beijing 100190 Peoples R China|Chinese Acad Sci Inst Elect Engn 6 Beiertiao Beijing 100190 Peoples R China|Univ Chinese Acad Sci 6 Beiertiao Beijing 100190 Peoples R China|Beijing Engn Res Ctr Solar Thermal Power 6 Beiertiao Beijing 100190 Peoples R China;

    Huazhong Univ Sci & Technol Sch Energy & Power Engn Wuhan 430074 Peoples R China|Huazhong Univ Sci & Technol State Key Lab Coal Combust Wuhan 430074 Peoples R China;

  • 收录信息 美国《科学引文索引》(SCI);美国《工程索引》(EI);美国《生物学医学文摘》(MEDLINE);
  • 原文格式 PDF
  • 正文语种 eng
  • 中图分类
  • 关键词

    Particle flow characteristics; Solar receiver; Computational particle fluid dynamic; Particle layer thickness; Radial movement;

    机译:颗粒流动特性;太阳能接收器;计算颗粒流体动力学;颗粒层厚度;径向运动;

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