Optimization and control of the light environment for greenhouse crop production

被引:0
作者
Pingping Xin
Bin Li
Haihui Zhang
Jin Hu
机构
[1] Northwest A&F University,College of Mechanical and Electronic Engineering
[2] Ministry of Agriculture and Rural Affairs,Key Laboratory of Agricultural Internet of Things
[3] Shaanxi Key Laboratory of Agricultural Information Perception and Intelligent Service,undefined
来源
Scientific Reports | / 9卷
关键词
D O I
暂无
中图分类号
学科分类号
摘要
Optimization and control of the greenhouse light environment is key to increasing crop yield and quality. However, the light saturation point impacts the efficient use of light. Therefore, the dynamic acquisition of the light saturation point that is influenced by changes in temperature and CO2 concentration is an important challenge for the development of greenhouse light environment control system. In view of this challenge, this paper describes a light environment optimization and control model based on a crop growth model for predicting cucumber photosynthesis. The photosynthetic rate values for different photosynthetic photon flux densities (PPFD), CO2 concentration, and temperature conditions provided to cucumber seedlings were obtained by using an LI-6400XT portable photosynthesis system during multi-factorial experiments. Based on the measured data, photosynthetic rate predictions were determined. Next, a support vector machine(SVM) photosynthetic rate prediction model was used to obtain the light response curve under other temperatures and CO2 conditions. The light saturation point was used to establish the light environment optimization and control model and to perform model validation. The slope of the fitting straight line comparing the measured and predicted light saturation point was 0.99, the intercept was 23.46 and the coefficient of determination was 0.98. The light control model was able to perform dynamic acquisition of the light saturation point and provide a theoretical basis for the efficient and accurate control of the greenhouse light environment.
引用
收藏
相关论文
共 134 条
[11]  
Maris JA(2013) plant species grown under different light intensities Lighting Research and Technology. 45 295-304
[12]  
Li Q(2010)Design on LED flexible light system and its effect on growth of spinach Transactions of the CSAE. 26 274-279
[13]  
Zhang R(1968)Realization of light quality adjustable precise light compensating method in greenhouse agriculture Plant Physiology. 43 902-906
[14]  
Wang Y(1977)Dynamic control of supplemental lighting intensity in a greenhouse environment Plant Physiology. 59 868-72
[15]  
Lamontagne M(2002)Temperature modified model for single-leaf net photosynthetic rate of greenhouse tomato Solar Energy. 72 385-395
[16]  
Bigras FJ(2011)Effect of temperature, CO Photosynthetica. 49 467-471
[17]  
Margolis HA(2013) concentration, and light intensity on oxygen inhibition of photosynthesis in Wheat Leaves Journal of Triticeae Crops. 110 2233-2237
[18]  
Mahendra S(2009)Effects of light, carbon dioxide, and temperature onphotosynthesis, oxygen inhibition of photosynthesis, and transpiration in solanum tuberosum Journal of Jinggangshan University. 30 9-13
[19]  
Ogren WL(2014)Dynamic annual daylight simulations based on one-hour and one-minute means of irradiance data Chinese Journal of Plant Ecology. 38 1241-1249
[20]  
Widholm JM(2013)A mathematical model for describing light-response curves in Nicotiana tabacum, L Plant Cell Environment. 36 1617-1630