Review of intelligent sprinkler irrigation technologies for remote autonomous system
Abstract
Keywords: intelligent sprinkler irrigation, precision agriculture, soil moisture sensors, wireless sensor network, remote data management, autonomous system
DOI: 10.25165/j.ijabe.20181101.3557
Citation: Zhu X Y, Chikangaise P, Shi W D, Chen W H, Yuan S Q. Review of intelligent sprinkler irrigation technologies for remote autonomous system. Int J Agric & Biol Eng, 2018; 11(1): 23–30.
Keywords
Full Text:
PDFReferences
Luo X W, Liao J, Hu L, Zhang Y, Zhou Z Y. Improving agricultural mechanization level to promote agricultural sustainable development. Transactions of the CSAE, 2016; 32(1): 1–11. (in Chinese)
Giagnocavo C, Bienvenido F, Li M, Zhao Y R, Sanchez-Molina J A, Yang X T. Agricultural cooperatives and the role of organisational models in new intelligent traceability systems and big data analysis. Int J Agric & Biol Eng, 2017; 10(5): 115–125.
Wolfert S, Ge L, Verdouw C, Bogaardt M J. Big data in smart farming: A review. Agricultural Systems, 2014; 153:69–80.
Shah N G, Das I. Precision irrigation sensor network based irrigation, problems, perspectives and challenges of agricultural water management. IIT Bombay, India, 2012; pp. 217–232.
Yuan S Q, Darko R O, Zhu X Y, Liu J P, Tian K. Optimization of movable irrigation system and performance assessment of distribution uniformity under varying conditions. Int J Agric & Biol Eng, 2017; 10(1): 72–79.
Thompson R B, Gallardo M, Valdez L C, Fernández M D. Using plant water status to define threshold values for irrigation management of vegetable crops using soil moisture sensors. Agric Water Manag, 2007; 88: 147–158.
Hsiao T C, Steduto P, Fereres E. A systematic and quantitative approach to improve water use efficiency in agriculture. Irrig Sci, 2007; 25: 209–231.
Sadeghi S H, Peters T, Shafii B, Amini M Z, Stöckle C. Continuous variation of wind drift and evaporation losses under a linear move irrigation system. Agric Water Manag, 2017; 182 (3): 39–54.
Zhu M, Zhou X Q, Zhai Z F. Research progresses in technological innovation and integration of agricultural engineering. Int J Agric & Biol Eng, 2016; 9(6): 1-9.
Keller J, Bliesner R D. Sprinkler and trickle irrigation. The Blackburn Press, Caldwell, 2000.
Peters R T, Evett S R. Spatial and temporal analysis of crop stress using multiple canopy temperature maps created with an array of center-pivot-mounted infrared thermometers. Transactions of ASABE, 2007; 50(3): 919–927.
Zhu X Y, Peters T, Neibling H. Hydraulic performance assessment of LESA at low pressure. Irrig Drain, 2016; 65(4): 530–536.
Liu J P, Yuan S Q, Li H, Zhu X Y. Experimental and combined calculation of variable fluidic sprinkler in agriculture irrigation. Agricultural Mechanization in Asia, Africa, and Latin America, 2016; 47(1): 82–88.
Shankar V, Ojha C S P, Prasad K S H. Irrigation scheduling for maize and Indian-mustard based on daily crop water requirement in a semi-arid region, International Journal of Civil and Environmental Engineering, 2012; 6: 476–485.
Lan Y B, Thomson S J, Huang Y B, Hoffmann W C, Zhang H H. Current status and future directions of precision aerial application for site-specific crop management in the USA. Comput Electron Agric, 2010; 74(1): 34–38.
Li L H, Zhang X Y, Qiao X D, Liu G M. Analysis of the decrease of center pivot sprinkling system uniformity and its impact on maize yield. Int J Agric & Biol Eng, 2016; 9(4): 108–119.
Duan F Y, Liu J R, Fan Y S, Chen Z, Han Q B, Cao H. Influential factor analysis of spraying effect of light hose-fed traveling sprinkling system. Journal of Drainage and Irrigation Machinery Engineering, 2017; 35(6): 541–546. (in Chinese)
Lin Y Y, Zhang Z X, Xu D, Nie T Z. Effect of water and fertilizer coupling optimization test on water use efficiency of rice in black soil regions. Journal of Drainage and Irrigation Machinery Engineering, 2016; 34(2): 151–156.
Yan H J. Study on water distribution irrigation uniformity of center pivot and later move irrigation system based on variable rate technology. Doctoral Thesis, China Agricultural University, 2005; pp.95–96. (in Chinese)
Peters T R, Evett S R. Automation of a center pivot using the temperature-time threshold method of irrigation scheduling. J Irrig Drain Eng ASCE, 2008; 134(1): 286–291.
Sadler E J, Evans R G, Stone K C, Camp C R. Opportunities for conservation with precision irrigation. Journal of Soil and Water Conservation, 2005; 60(6): 371–379.
Zhu X Y, Yuan S Q, Liu J P. Effect of sprinkler head geometrical parameters on hydraulic performance of fluidic sprinkler. J Irrig Drain Eng ASCE, 2012; 138(11): 1019–1026.
Buchleiter G W, Camp C, Evans R G, King B A. Technologies for variable water application with sprinklers In: Proc. 4th Decennial Natl. Irrigation Symp. Phoenix, AZ. Edited by Evans R G, Benham B L, and Trooien T P. November 14-16, 2000. ASAE, St. Joseph, MI. (Publication 701P0004), 2000; pp. 316–321.
Evans R G, Buchleiter G W, Sadler E J, King B A, Harting G B. Controls for precision irrigation with self-propelled systems. In: Proc. 4th Decennial Natl. Irrigation Symp. Phoenix, AZ. Edited by Evans R G, Benham B L, and Trooien T P. November 14-16, 2000. ASAE, St. Joseph, MI. (Publication 701P0004), 2000; pp. 322–331.
Sadler E J, Evans R G, Buchleiter G W, King B A, Camp C R. Site-specific irrigation - management and control. In: Proc. 4th Decennial Natl. Irrigation Symp. Phoenix, AZ. Edited by Evans R G, Benham B L, and Trooien T P. November 14-16, 2000. ASAE, St. Joseph, MI. (Publication 701P0004), 2000; pp. 304–315.
Perry C D, Dukes M D, Harrison K A. Effects of variable-rate sprinkler cycling on irrigation uniformity. ASABE Paper No. 041117. St. Joseph, MI: ASABE, 2004.
Christiansen J E. Irrigation by sprinkling. California Agricultural Experiment Station. Bulletin 670. University of California, Berkeley, CA, 1942.
McCarthy A C, Hancock N H, Raine S R. VARIwise: A general-purpose adaptive control simulation framework for spatially and temporally varied irrigation and sub-field scale. Comput Electron Agric, 2010; 70: 117–128.
Gowda P H, Chávez J L, Colaizzi P D, Evett S R, Howell T A, Tolk J A. ET mapping for agricultural water management: present status and challenges. Irrig Sci, 2008; 26: 223–237.
Mahan J R, Conaty W, Neilsen J, Payton P, Cox S B. Field performance in agricultural settings of a wireless temperature monitoring system based on a low-cost infrared sensor. Comput Electron Agric, 2010; 71: 176–181.
Gil E, Arnó J, Llorens J, Sanz R, Llop J, Rosell J R, et al. Advanced technologies for the improvement of spray application techniques in Spanish viticulture: An overview. Sensors, 2014; 14(1): 691–708.
Darko R O, Yuan S Q, Liu J P, Yan H F, Zhu X Y. Overview of advances in improving uniformity and water use efficiency of sprinkler irrigation. Int J Agric & Biol Eng, 2017; 10(2): 1–15.
Peters R T, Evett S R. Using low-cost GPS receivers for determining field position of mechanical irrigation systems. Appl Engr Agric, 2005; 21(5): 841–845.
Liu J P, Yuan S Q, Li H, Zhu X Y. A theoretical and experimental study of the variable-rate complete fluidic sprinkler. Appl Engr Agric, 2013; 29(1): 17–24.
Liu J P, Yuan S Q, Li H, Zhu X Y. Numerical simulation and experimental study on a new type variable-rate fluidic sprinkler. Journal of Agricultural Science and Technology, 2013; 15(3): 569–581.
Lan Y B, Chen S D, Fritz B K. Current status and future trends of precision agricultural aviation technologies. Int J Agric & Biol Eng, 2017; 10(3): 1–17.
Xuan C Z, Wu P, Zhang L N, Ma Y H, Liu Y Q. Compressive sensing in wireless sensor network for poultry acoustic monitoring. Int J Agric & Biol Eng, 2017; 10(2): 94–102.
Camilli A, Cugnasca C E, Saraiva A M, Hirakawa A R, Correa P L P. From wireless sensors to field mapping: anatomy of an application for precision agriculture. Comput Electron Agric, 2007; 58(1): 25–36.
Wang P, Luo X W, Zhou Z Y, Zang Y, Hu L. Key technology for remote sensing information acquisition based on micro UAV. Transactions of the CSAE, 2014; 30(18): 1–12. (in Chinese)
Ma H Q, Huang W J, Jing Y S. Wheat powdery mildew forecasting in filling stage based on remote sensing and meteorological data. Transactions of the CSAE, 2016; 32(9): 165–172. (in Chinese)
Zhu H P, Masoud S, Robert D F. A portable scanning system for evaluation of spray deposit distribution. Comput Electron Agric, 2011; 76: 38–43.
Shock C C, David R J, Shock C A, Kimberling C A. Innovative, automatic, low cost reading of Watermark soil moisture sensors. In Proc. 1999 Irrigation Association Technical Conference, The Irrigation Association, Falls Church, VA, 1999; pp.147–152.
Andales A A, Bauder T A, Arabi M. A mobile irrigation water management system using a collaborative GIS and weather station networks. In: Ahuja L R, Ma L, Lascano R. (Eds.), Practical Applications of Agricultural System Models to Optimize the Use of Limited Water, Advances in Agricultural Systems Modeling. ASA, CSSA, and SSSA, Madison, WI, USA, 2014; pp. 53–84.
Zhang H H, Lan Y B, Charles P C S, Westbrook J, Hoffmann W C, Yang C H. Fusion of remotely sensed data from airborne and ground-based sensors to enhance detection of cotton plants. Comput Electron Agric, 2013; 93: 55–59.
Song Y, Sun H, Li M, Zhang Q. Technology application of smart spray in agriculture: A review. Intelligent Automation and Soft Computing, 2015; 21(3): 319–333.
Andrade-Sánchez P, Upadhyaya S K, Jenkins B M. Development, construction, and field evaluation of a soil compaction profile sensor, Transactions of the ASABE, 2007; 50(3): 719−725.
Willers J L, Jenkins J N, Ladner W L, Gerard P D, Boykin D L, Hood K B. Site-specific approaches to cotton insect control. Sampling and remote sensing analysis techniques. Precision Agriculture, 2005; 6: 431–452.
Han X Z, Kim H J, Jeon C W, Moon H C, Kim J H. Development of a low-cost GPS/INS integrated system for tractor automatic navigation. Int J Agric & Biol Eng, 2017; 10(2): 123–131.
Kang F, Pierce F J, Walsh D B, Zhang Q, Wang S. An automated trailer sprayer system for targeted control of cutworm in vineyards. Transactions of the ASABE, 2011; 54(4): 1511–1519.
Mulla D J. Twenty five years of remote sensing in precision agriculture: Key advances and remaining knowledge gaps. Biosyst Eng, 2013; 114(4): 358–371.
Piekarczyk J. Application of remote sensing in agriculture. Geoinformatica Polonica, 2014; 13(1): 69–75.
Montoya F G, Gómez J, Cama A, Sierra A Z, Martínez F, de la Cruz J L, et al. A monitoring system for intensive agriculture based on mesh networks and the android system. Comput Electron Agric, 2013; 99: 14–20.
Wu C, Tang Y, Tang L D, Chen J, Li K. Characteristic parameter wireless monitoring system of hydraulic turbine based on Android. Journal of Drainage and Irrigation Machinery Engineering, 2017; 35(4): 362–368. (in Chinese)
Huang Y B, Thomson S J, Brand H J, Reddy K N. Development of low-altitude remote sensing systems for crop production management. Int J Agric & Biol Eng, 2016; 9(4): 1–11.
Yu F H, Xu T Y, Du W, Ma H, Zhang G S, Chen C L. Radiative transfer models (RTMs) for field phenotyping inversion of rice based on UAV hyperspectral remote sensing. Int J Agric & Biol Eng, 2017; 10(4): 150–157.
Wang P, Zhang J X, Lan Y B, Zhou Z Y, Luo X W. Radiometric calibration of low altitude multispectral remote sensing images. Transactions of the CSAE, 2014; 30(19): 199–206. (in Chinese)
Liang Q, Yuan D, Wang Y, Chen H H. A cross-layer transmission scheduling scheme for wireless sensor networks. Computer Communications, 2007; 30: 2987–2994.
King B A, Wall R W, Wall L R. Supervisory control and data acquisition system for closed-loop center pivot irrigation. ASABE Paper No. 002020. St. Joseph, MI: ASABE, 2000.
Wall R W, King B A. Incorporating plug and play technology into measurement and control systems for irrigation management. ASABE Paper No. 042189. St. Joseph, MI: ASABE, 2004.
O’Shaughnessy S A, Evett S R. Developing wireless sensor networks for monitoring crop canopy temperature using a moving sprinkler system as a platform. Appl Engr Agric, 2010; 26(2): 331–341.
Vellidis G, Tucker M, Perry C, Kvien C, Bednarz C. A real-time wireless smart sensor array for scheduling irrigation. Comput Electron Agric, 2008; 61(1): 44–50.
Pierce F J, Elliott T V. Regional and on-farm wireless sensor networks for agricultural systems in eastern Washington. Comput Electron Agric, 2008; 61(1): 32–43.
Diaz S E, Perez J C, Mateos A C, Marinescu M C, Guerra B B. A novel methodology for the monitoring of the agricultural production process based on wireless sensor networks. Comput Electron Agric, 2011; 76: 252–265.
Kim Y, Evans R G, Iversen W M. Remote sensing and control of an irrigation system using a wireless sensor network. IEEE Transactions on Instrumentation and Measurement, 2008; 57(7): 1379–1387.
Kim Y, Evans R G. Software design for wireless sensor-based site-specific irrigation. Comput Electron Agric, 2009; 66(2): 159–165.
Zhang Z. Investigation of wireless sensor networks for precision agriculture. ASAE/CSAE Annual International Meeting. Paper No. 041154. St. Joseph, MI: ASAE, 2004.
Oksanen T, Ohman M, Miettinen M, Visala A. Open configurable control system for precision farming. ASABE Paper No. 701P1004. St. Joseph, MI: ASABE, 2004.
Lee W S, Burks T F, Schueller J K. Silage yield monitoring system. ASABE Paper No. 021165. St. Joseph, MI: ASABE, 2002.
Dowla F. Handbook of RF and wireless technologies. Burlington, MA: Elsevier Science, 2006.
Li Y, Ephremides A. A joint scheduling, power control, and routing algorithm for ad hoc wireless networks. Ad Hoc networks, 2007; 5(7): 959–973.
Demirkol I, Esroy C. Energy and delay optimized contention for wireless sensor networks. Computer Networks, 2009; 53: 2106–2119.
Hebel M A. Meeting wide-area agricultural data acquisition and control challenges through Zigbee wireless network technology. Proc. International Conference of Computers in Agriculture and Natural Resources. July 24-26, 2006. Lake Buena Vista, FL. 2006; pp. 234–239.
Goense D, Thelen J. Wireless sensor networks for precise phytophthora decision support. Proc. ASAE Annual International Meeting, July 17-20, 2005, Tampa, Florida. Paper No. 053099. 2005.
Andrade-Sanchez P, Pierce F J, Elliott T V. Performance assessment of wireless sensor networks in agricultural settings. St. Joseph, Mich.: ASABE, Paper No. 073076, 2007.
Blonquist J M, Jones S B, Robinson D A. Precise irrigation scheduling for turfgrass using a subsurface electromagnetic soil moisture sensor. Agric Water Manag, 2006; 84: 153–165.
Huang Y B, Thomson S J, Lan Y B, Maas S J. Multispectral imaging systems for airborne remote sensing to support agricultural production management. Int J Agric & Biol Eng, 2010; 3(1): 50–62.
Son N T, Chen C F, Chen C R, Chang L, Duc H, Nguyen L. Prediction of rice crop yield using MODIS EVI-LAI data in the Mekong Delta, Vietnam. International Journal of Remote Sensing, 2013; 34(20): 7275–7292.
Johnson D M. An assessment of pre- and within-season remotely sensed variables for forecasting corn and soybean yields in the United States. Remote Sensing of Environment, 2014; 141(4): 116–128.
Bhattacharya B K, Chattopadhyay C. A multi-stage tracking for mustard rot disease combining surface meteorology and satellite remote sensing. Comput Electron Agric, 2013; 90: 35–44.
Jonas F, Gunter M. Multi-temporal wheat disease detection by multi-spectral remote sensing. Precision Agriculture, 2007; 8(3): 161–172.
Berk P, Hocevar M, Stajnko D, Belsak A. Development of alternative plant protection product application techniques in orchards, based on measurement sensing systems: A review. Comput Electron Agric, 2016; 124: 273–288.
Van H L, Tang X. An efficient algorithm for scheduling sensor data collection through multi-path routing structures. Journal of Network and Computer Applications, 2014; 38(2): 150–162.
Hutchinson M, Oh H, Chen W H. A review of source term estimation methods for atmospheric dispersion events using static or mobile sensors. Information Fusion, 2017; 36 (11): 130–148.
Wu B F, Gommes R, Zhang M, Zeng H W, Yan N N, Zou W T, et al. Global crop monitoring: a satellite-based hierarchical approach. Remote Sensing, 2015; 7(4): 3907–3933.
Sherine M, Abd E K, Basma M, Mohammad E B. Precision farming solution in Egypt using the wireless sensor network technology. Egyptian Informatics Journal, 2013; 14: 221–233.
Aqeel-Ur-Rehman, Abbasi A Z, Islam N, Shaikh Z A. A review of wireless sensors and networks applications in agriculture. Comput Stand Interfaces, 2014; 36: 263–270.
Blonquist J M, Jones S B, Robinson D A. Precise irrigation scheduling for turf grass using a subsurface electromagnetic soil moisture sensor, Agric Water Manag, 2006; 84: 153–165.
Dias P C, Roque W, Ferreira E C, Siqueira Dias J A. A high sensitivity single-probe heat pulse soil moisture sensor based on a single non junction transistor. Comput Electron Agric, 2013; 96: 139–147.
Xiao D, Feng J, Wang N, Luo X, Hu Y. Integrated soil moisture and water depth sensor for paddy fields. Comput Electron Agric, 2013; 98: 214–221.
Kim Y, Evans R G, Iversen W M. Evaluation of closed-loop site-specific irrigation with wireless sensor network. J Irrig Drain Eng ASCE, 2009; 135(1): 25–31.
Cao H, Guo F T, Fan Y S, Duan F Y, Han Q B, Jia Y H, et al. Running speed and pressure head loss of the light and small sprinkler irrigation system. Journal of Drainage and Irrigation Machinery Engineering, 2016; 34(2): 179–184. (in Chinese)
Cai S B, Zhu D L, Ge M S, Liu K N, Li D. Photovoltaic optimization of solar-powered linear move sprinkler irrigation system. Journal of Drainage and Irrigation Machinery Engineering, 2017; 35(5): 417–423. (in Chinese)
Bautista-Capetillo C, Robles O, Salinas H, Playán E. A particle tracking velocimetry technique for drop characterization in agricultural sprinklers. Irrig Sci, 2014; 32(6): 437–447.
Sayyadi H, Nazemi A H, Sadraddini A A, Delirhasannia R. Characterising droplets and precipitation profiles of a fixed spray-plate sprinkler. Biosyst Eng, 2014; 119(1): 13–24.
Liu J P, Liu X F, Zhu X Y, Yuan S Q. Droplet characterisation of a complete fluidic sprinkler with different nozzle dimensions. Biosyst Eng, 2016; 148(6): 90–100.
Liu J P, Yuan S Q, Darko R O. Characteristics of water and droplet size distributions from fluidic sprinklers. Irrig Drain, 2016; 65(4): 522–529.
Zhu X Y, Yuan S Q, Jiang J Y, Liu J P, Liu X F. Comparison of fluidic and impact sprinklers based on hydraulic performance. Irrig Sci, 2015; 33(5): 367–374.
Zhang L, Merley G P, Pinthong K. Assessing whole-field sprinkler application uniformity. Irrig Sci, 2013; 31: 87–105.
Dwomoh F A, Yuan S, Hong L. Field performance characteristics of fluidic sprinkler. Appl Engr Agric, 2013; 29(4): 529–536.
Karmeli D, Peri G. Basic principles of pulse irrigation. J Irrig Drain Div ASCE, 1974; 100(IR3): 309–319.
Wang Y X, Xu S S, Li W B, Kang F, Zheng Y J. Identification and
location of grapevine sucker based on information fusion of 2D laser scanner and machine vision. Int J Agric & Biol Eng, 2017; 10(2): 84–93.
Evans R G, Harting G B. Precision irrigation with center pivot systems on potatoes. In Proceedings of ASCE 1999 International Water Resources Engineering Conference. R. Walton and R.E. Nece, eds. Reston, VA: ASCE, 1999; CD-ROM.
Evans R G, Han S, Schneider S M, Kroeger M W. Precision center pivot irrigation for efficient use of water and nitrogen. In Proceedings of the 3rd International Conference on Precision Agriculture. Eds. Roberts P C, Rust R H, Larsen W E. Madison, WI: ASA-CSSA, 1996; pp.75–84.
Bao Y, Liu J P, Liu X F, Tian K, Zhang Q. Experimental study on effects of pressure on water distribution model of low-pressure sprinkler. Journal of Drainage and Irrigation Machinery Engineering, 2016; 34(1): 81–85. (in Chinese)
Chávez J L, Pierce F J, Evans R G. Compensating inherent linear move water application errors using a variable rate irrigation system. Irrig Sci, 2010; 28(3): 203–210.
Chávez J L, Pierce F J, Elliot T V, Evans R G, Kim Y, Iversen W M. A remote irrigation monitoring and control system for continuous move systems. Par B: field testing and results. Precision Agriculture, 2010; 11(1): 11–26.
King B A, Kincaid D C. A variable flow rate sprinkler for site-specific irrigation management. Appl Engr Agric, 2004; 20(6): 765–770.
Liu J P, Liu W Z, Bao Y, Zhang Q, Liu X F. Drop size distribution experiments of gas-liquid two phases fluidic sprinkler. Journal of Drainage and Irrigation Machinery Engineering (JDIME), 2017; 35(8): 731–736. (in Chinese)
Tian K, Zhu X Y, Wan J H, Bao Y. Development and performance test of lateral move irrigation system. Journal of Drainage and Irrigation Machinery Engineering, 2017; 35(4): 357–361. (in Chinese)
Wan J H, Zhu X Y, Tian K, Bao Y. Translocating speed ration effect on water distribution uniformity of lightweight lateral move irrigation system. Water Saving Irrigation, 2016; (9): 87–89, 93. (in Chinese)
Camp C R, Sadler E J, Evans D E, Usrey L J, Omary M. Modified center pivot system for precision management of water and nutrients. Appl Engr Agric, 1998; 14(1): 23–31.
Lyle W M, Bordovsky J P. Low energy precision application (LEPA) irrigation system. Transactions of ASABE, 1981; 26(5): 1241–1245.
Roth R L, Gardner B R. Modified self-moving irrigation system for water-nitrogen crop production studies. ASAE paper No.89-0502, St. Joseph, MI: ASAE, 1989.
Copyright (c)