Implementation of Wireless Sensor Networks for Irrigation Control in Three Container Nurseries

被引:66
作者
Chappell, Matthew [1 ]
Dove, Sue K. [1 ]
van Iersel, Marc W. [1 ]
Thomas, Paul A. [1 ]
Ruter, John [1 ]
机构
[1] Univ Georgia, Dept Hort, Athens, GA 30602 USA
关键词
commercial horticulture production; container production; precision irrigation; soil moisture sensor; SOIL-MOISTURE SENSOR; WATER-USE; ROOTED CUTTINGS; EFFICIENCY; EVAPOTRANSPIRATION; GREENHOUSE; GROWTH; PLANTS;
D O I
10.21273/HORTTECH.23.6.747
中图分类号
S6 [园艺];
学科分类号
0902 ;
摘要
Water quality and quantity are increasingly important concerns for agricultural producers and have been recognized by governmental and nongovernmental agencies as focus areas for future regulatory efforts. In horticultural systems, and especially container production of ornamentals, irrigation management is challenging. This is primarily due to the limited volume of water available to container-grown plants after an irrigation event and the resultant need to frequently irrigate to maintain adequate soil moisture levels without causing excessive leaching. To prevent moisture stress, irrigation of container plants is often excessive, resulting in leaching and runoff of water and nutrients applied to the container substrate. For this reason, improving the application efficiency of irrigation is necessary and critical to the long-term sustainability of the commercial nursery industry. The use of soil moisture sensing technology is one method of increasing irrigation efficiency, with the on-farm studies described in this article focusing on the use of capacitance-based soil moisture sensors to both monitor and control irrigation events. Since on-farm testing of these wireless sensor networks (WSNs) to monitor and control irrigation scheduling began in 2010, WSNs have been deployed in a diverse assortment of commercial horticulture operations. In deploying these WSNs, a variety of challenges and successes have been observed. Overcoming specific challenges has fostered improved software and hardware development as well as improved grower confidence in WSNs. Additionally, growers are using WSNs in a variety of ways to fit specific needs, resulting in multiple commercial applications. Some growers use WSNs as fully functional irrigation controllers. Other growers use components of WSNs, specifically the web-based graphical user interface (GUI), to monitor grower-controlled irrigation schedules.
引用
收藏
页码:747 / 753
页数:7
相关论文
共 37 条
[21]  
Kim J., 2011, P SO NURSERY ASS RES, V56, P46
[22]  
Kim J., 2009, PROC SO NURS ASS RES, V54, P12
[23]   Water regulation, crop production, and agricultural water management-Understanding farmer perspectives on irrigation efficiency [J].
Knox, J. W. ;
Kay, M. G. ;
Weatherhead, E. K. .
AGRICULTURAL WATER MANAGEMENT, 2012, 108 :3-8
[24]   Wireless Sensor Network Design for Monitoring and Irrigation Control: User-centric Hardware and Software Development [J].
Kohanbash, David ;
Kantor, George ;
Martin, Todd ;
Crawford, Lauren .
HORTTECHNOLOGY, 2013, 23 (06) :725-734
[25]  
Lea-Cox John D., 2001, Journal of Environmental Horticulture, V19, P226
[26]   Advancing Wireless Sensor Networks for Irrigation Management of Ornamental Crops: An Overview [J].
Lea-Cox, John D. ;
Bauerle, William L. ;
van Iersel, Marc W. ;
Kantor, George F. ;
Bauerle, Taryn L. ;
Lichtenberg, Erik ;
King, Dennis M. ;
Crawford, Lauren .
HORTTECHNOLOGY, 2013, 23 (06) :717-724
[27]   Profitability of Sensor-based Irrigation in Greenhouse and Nursery Crops [J].
Lichtenberg, Erik ;
Majsztrik, John ;
Saavoss, Monica .
HORTTECHNOLOGY, 2013, 23 (06) :770-774
[28]   A Calibrated Time Domain Transmissometry Soil Moisture Sensor Can Be Used for Precise Automated Irrigation of Container-grown Plants [J].
Miralles-Crespo, Julian ;
van Iersel, Marc W. .
HORTSCIENCE, 2011, 46 (06) :889-894
[29]  
Nautiyal M., 2010, P AM SOC AGR BIOL EN
[30]  
O'Meara L., 2011, P SO NURSERY ASS RES, V56, P162