数字农科院2.0

Coupled system for underground heating exchange and solar heat-humidity regulation in greenhouse: Experimental study and simulation analysis

文献类型: 外文期刊

作者: Chen Xinge;Zang Jianbin;Wu Gang;Liang Hao;Yang Yunfan;Shi Dawei;Feng Chaoqing

作者机构:

关键词: Composite desiccant;Greenhouse;Heat and humidity control;Underground heat exchange

期刊名称: Energy

ISSN: 0360-5442

年卷期: 2024 年 301 卷

页码:

收录情况: SCIE(2024版) ; ; EI(2024版)

摘要: In winter, greenhouses located in mid to high latitudes are required a function of dehumidification and warming due to the low outdoor temperature. Focusing on small spires greenhouses, this study regulates the low temperature and high humidity environment inside the greenhouse and proposes a new-type of greenhouse heat and humidity regulation system by combining composite solid desiccant dehumidification with ground heat exchange system. The greenhouse internal environment is warmed and dehumidified at night by utilizing the adsorption effect of the compound dehumidifier and the sensible heat exchange between the heat exchange system in the ground and the greenhouse. Solar thermal energy is collected during the day using multi-curved tank collector (MTC) for thermal storage in the geothermal system and desiccant desorption. The rationality of pipeline layout is verified through CFD simulation, and the indoor temperature and humidity distribution during the system operation is explored. The experimental results show that the moisture adsorption capacity of the composite desiccant SG-CaCl2 for 10h is 0.511 g/g. The optimal regeneration temperature is 80–100 °C. This system can reduce the nighttime relative humidity of the greenhouse in winter from 96.5 % to 83.6 %, and the average indoor air temperature after warming is 12.8 °C. The heat exchange efficiency of the underground heating exchange system is 0.38. During the desorption phase on daytime, the maximum outlet temperature of MTC is 103.8 °C, and the average heat collection efficiency is 0.42. The system can effectively regulate the air environment in the greenhouse to the appropriate zone for crop growth by combining solar thermal collector technology with recyclable solid dehumidification technology.

分类号:

  • 相关文献

[1]Coupled heat and humidity control system of narrow-trough solar collector and solid desiccant in Chinese solar greenhouse: Analysis of optical / thermal characteristics and experimental study. Xinge Chen,Hao Liang,Gang Wu,Chaoqing Feng,Tao Tao,Yaning Ji,Qianlei Ma,Yuxin Tong. 2023

[2]Effects of Nitrogen Rate on the Growth, Yield and Quality of Tomato in Greenhouse Fertilization with Biogas Slurry. Ning, X. J.,Yu, H. J.,Jiang, W. J.,Liu, X. R.. 2012

[3]Effectiveness of gaseous CO2 fertilizer application in China's greenhouses between 1982 and 2010. Ma Xin,Liu Shuang,Li Yue,Gao Qinzhu,Ma Xin,Liu Shuang,Li Yue,Gao Qinzhu. 2015

[4]Twenty years development of soilless culture in mainland China. Jiang, W. J.,Yu, H. J.. 2007

[5]Response of sap flux and evapotranspiration to deficit irrigation of greenhouse pear-jujube trees in semi-arid northwest China. Feng, Yu,Cui, Ningbo,Zhao, Lu,Feng, Yu,Cui, Ningbo,Zhao, Lu,Du, Taisheng,Feng, Yu,Gong, Daozhi,Cui, Ningbo,Hu, Xiaotao.

[6]Present situation and future development for protected horticulture in mainland China. Jiang, W. J.,Yu, H. J.. 2008

[7]Cadmium Accumulation in Vegetable Plantation Land Soils under Protected Cultivation: A Case Study. Li, Lian-Fang,Zeng Xi-Bai,Bai Ling-Yu,Mei Xu-Rong,Yang Jia-Bo,Hu Liu-Jie. 2009

[8]Green asparagus close planting culture in solar greenhouse. Zhang, Zhi-Bin,He, Chao-Xing,Wang, Huaisong. 2007

[9]SIMULATION OF REFERENCE CROP EVAPOTRANSIRATION IN A PLASTIC SOLAR GREEN HOUSE USING A SIMPLIFIED ENERGY BALANCE APPROACH. Liu, X.,Liu, Z.,Duan, A.,Sun, J.,Liu, H.,Chen, Z.,Zhang, Jiyang,Adaobi, Uzokwe Pauline,Chen, Z.,Uzokwe, Veronica N. E.. 2015

[10]Development of eco-organic type soilless culture in mainland China. Jiang, WJ,Liu, W,Yu, HJ,Zheng, GH. 2004

[11]Effects of organized soil cultivation on yield and quality of tomato in greenhouse. Zhang, ZB,He, CX. 2005

[12]The potential of four mite species (Acari: Phytoseiidae) as predators of sucking pests on protected cucumber (Cucumis sativus L.) crop. Sarwar, Muhammad,Xu Xuenong,Wang Endong,Wu Kongming. 2011

[13]Spatial Distribution Of Air Temperature And Relative Humidity In The Greenhouse As Affected By External Shading In Arid Climates. Ahmed, HA, Tong, YX, Yang, QC, Al-Faraj, AA, Abdel-Ghany, AM. 2019

[14]Intelligent Plant Protection System of Greenhouse Based on Plant Phenotypic Discrimination Warning. Wei Sun,Qin Qiu,Shanshan Cao. 2021

[15]Negative pressure irrigation as a potential technique for increasing vegetable yields and decreasing nitrous oxide emissions. Shengping Li,Ling Jiao,Xueping Wu,Xiaojun Song,Xiaotong Liu,Huizhou Gao,Zixuan Han,Jinjing Lu,Guopeng Liang. 2023

[16]Pre-harvest Nitrogen Limitation and Continuous Lighting Improve the Quality and Flavor of Lettuce (Lactuca sativa L.) under Hydroponic Conditions in Greenhouse. Yang, Xiao,Hu, Jiangtao,Wang, Zheng,Huang, Tao,Xiang, Yuting,Zhang, Li,Peng, Jie,Tomas-Barberan, Francisco A.,Yang, Qichang. 2023

[17]Distinct distribution patterns and functional potentials of rare and abundant microorganisms between plastisphere and soils. Yongbin Li,Wenlong Gao,Caixia Wang,Miao Gao. 2023

[18]Study on the effect of anti-reflection film on the spectral performance of the spectral splitting covering applied to greenhouse. Qianlei Ma,Yi Zhang,Gang Wu,Qichang Yang,Wei Wang,Xinge Chen,Yaning Ji. 2023

[19]Negative pressure irrigation increases vegetable water productivity and nitrogen use efficiency by improving soil water and NO3–-N distributions. Shengping Li,Deshui Tan,Xueping Wu,Aurore Degré,Huaiyu Long,Shuxiang Zhang,Jinjing Lu,Lili Gao,Fengjun Zheng,Xiaotong Liu,Guopeng Liang. 2021

[20]Estimated viability of greenhouse cooling technologies for growing a tomato crop under various climates. Yating Yang,Shirong Guo,Yongsheng Chen. 2021

作者其他论文 更多>>