Experimental study on spatiotemporal variation patterns of thermal environment in the large-span insulated greenhouse

被引:0
|
作者
Li, He [1 ]
Zong, Chengji [1 ]
Lu, Jiarui [2 ]
Zhao, Shumei [1 ,3 ]
Yang, Dongyan [4 ]
Song, Weitang [1 ,3 ]
机构
[1] China Agr Univ, Coll Water Resources & Civil Engn, Beijing 100083, Peoples R China
[2] Wenzhou Vocat Coll Sci & Technol, Wenzhou 325014, Peoples R China
[3] Minist Agr & Rural Affairs, Key Lab Agr Engn Struct & Environm, Beijing 100083, Peoples R China
[4] Ningxia Acad Agr & Forestry Sci, Inst Hort Res, Yinchuan 750002, Peoples R China
基金
中国国家自然科学基金;
关键词
Greenhouse microclimate; Large-span plastic greenhouse; Low enclosure wall; Aluminum foil diffuse film; Thermal blanket; Energy saving; Uniformity; SOLAR GREENHOUSES; PERFORMANCE; DESIGN; ENERGY; LIGHT;
D O I
10.1016/j.applthermaleng.2025.125530
中图分类号
O414.1 [热力学];
学科分类号
摘要
Large-span plastic greenhouses face serious challenges of insufficient insulation performance and uneven thermal environment distribution, which would weaken the heat storage and release performance of active/passive environmental control systems. The research problem is thus the spatiotemporal characteristics of large-span externally insulated greenhouses yet to be quantified and energy-saving strategies for facility retrofitting still need to be addressed. The objective of this study is to analyze the greenhouse microclimate under the different insulation schemes, weather conditions and ventilation managements. The novelty of the work is that we introduce a low enclosure wall positioned at the bottom edge of transparent roofs to reduce the greenhouse heating load. Moreover, the aluminum foil diffusion film applied to the wall surface further improves the photothermal utilization. Main results of this experimental study are that the horizontal microclimate heterogeneity is primarily affected by the fixed insulation projection and outside temperature, and low enclosure walls mitigates the difference in energy demand between the east and west cultivation zones. The construction of low enclosure walls effectively elevates the average night-time temperature by 1.4-3.3 degrees C, while attaching aluminum foil diffusion film can again raise it again by 1-2 degrees C. The incorporation of passive thermal storage media is useless for low enclosure walls, since the intercepted radiation at the wall surface accounts for only 12.3 % of the cumulative intensity of solar radiation. For the renovated greenhouse structure, we assessed the dehumidification and cooling effects of different ventilation scenarios. The partitioned operation strategy for east-west external thermal blankets was specified to avoid condensation heat loss.
引用
收藏
页数:14
相关论文
共 50 条
  • [41] Model experimental study on incremental launching construction method of large-span arch-girder combination bridge
    Li Xiao-bin
    Li Ying
    Kong Xiang-shao
    SUSTAINABLE ENVIRONMENT AND TRANSPORTATION, PTS 1-4, 2012, 178-181 : 2316 - 2322
  • [42] Finite Element Model Updating of Large-span Arch Bridge Based on Experimental Data
    Qin, Shi-Qiang
    Hu, Jia
    Cao, Hong-You
    Kang, Jun-Tao
    Pu, Qian-Hui
    Zhongguo Gonglu Xuebao/China Journal of Highway and Transport, 2019, 32 (07): : 66 - 76
  • [43] Experimental investigation of wind pressure characteristics and aerodynamic optimization of a large-span cantilevered roof
    Chen, Fubin
    Wang, Weijia
    Zhou, Jinfang
    Shu, Zhenru
    Li, Qiusheng
    STRUCTURES, 2021, 34 : 303 - 313
  • [44] Analysis of the Surrounding Rock Full-Displacement Variation in Large-Span Mudstone Highway Tunnels
    Chi, Dechao
    Luo, Yanbin
    Chen, Chengwei
    Wang, Shengqing
    Wu, Yunfei
    Hu, Yuhang
    SYMMETRY-BASEL, 2024, 16 (05):
  • [45] Vulnerability and Robustness of Corroded Large-Span Cable-Stayed Bridges under Marine Environment
    Lu, Wengao
    He, Zheng
    JOURNAL OF PERFORMANCE OF CONSTRUCTED FACILITIES, 2016, 30 (01)
  • [46] In-situ Experimental Study on Large-deformation Control and Reasonable Support Forms for a Large-span Highway Tunnel in Chlorite Schist
    Chen J.-X.
    Liu W.-W.
    Chen L.-J.
    Luo Y.-B.
    Wu Y.-F.
    Shi Z.
    Zhongguo Gonglu Xuebao/China Journal of Highway and Transport, 2020, 33 (12): : 212 - 223
  • [47] A Study on Nonlinear Dynamic Response of the Large-Span Roof Structure with Suspended Substructure
    Pan, Rui
    Zheng, Baofeng
    Qin, Ying
    SYMMETRY-BASEL, 2021, 13 (12):
  • [48] Progressive collapse analysis and mechanism study for large-span steel truss structures
    Jiang, Xiao-Feng
    Chen, Yi-Yi
    Gongcheng Lixue/Engineering Mechanics, 2010, 27 (01): : 76 - 83
  • [49] Study on the application of large-span prestressed concrete frame in added floor and rebuilding
    Jian, Bin
    Qin, Shihong
    Li, Tangning
    Chongqing Jianzhu Daxue Xuebao/Journal of Chongqing Jianzhu University, 2000, 22 (05): : 23 - 26
  • [50] Study for real-time monitoring of large-span bridge using GPS
    Jiang, JJ
    Lu, XZ
    Guo, JJ
    PROGRESS IN SAFETY SCIENCE AND TECHNOLOGY, VOL III, PTS A AND B, 2002, 3 : 308 - 312