Skip to main navigation menu Skip to main content Skip to site footer

Research Articles

Vol. 13 No. sp1 (2026): Recent Advances in Agriculture

Evaluation of fertigation uniformity under a drip irrigation system and its effects on irrigation water management in garlic (Allium sativum L.)

DOI
https://doi.org/10.14719/pst.13172
Submitted
11 December 2025
Published
11-03-2026

Abstract

Drip irrigation can save 30–60 % of water and enables the simultaneous application of water and fertilisers through fertigation. A field experiment was conducted for three consecutive rabi seasons (2021–22, 2022–23 and 2023–24) to evaluate the effect of different injector and emitter types on fertigation uniformity in garlic (Allium sativum L.) Three types of emitters and two types of fertiliser injectors were tested to determine their influence on the coefficient of variation (Cv) of water and nutrient application. Results showed that both injector type and emitter manufacturing variability significantly affected fertigation and irrigation uniformity. Across the years, the lowest Cv for fertigation was obtained with the combination of a pressure-compensating emitter (2 lph) and a venturi manifold device, whereas the highest Cv resulted from the combination of drip tape emitter (4 lph) with a hydro-pneumatic pressure pump vessel. Fertigation uniformity improved as Cv decreased. The study also revealed noticeable differences between the Cv of irrigation water and the Cv of fertiliser application, indicating that a system performing well in water distribution does not necessarily ensure uniform fertiliser distribution. Based on the findings, the use of 2 lph pressure-compensating emitters with a venturi manifold device is recommended for achieving higher fertigation uniformity in drip irrigation systems.

References

  1. 1. Loizou E, Karelakis C, Galanopoulos K, Mattas K. The role of agriculture as a development tool for a regional economy. Agricultural Systems. 2019;173:482–90. https://doi.org/10.1016/j.agsy.2019.04.002
  2. 2. Arjun KM. Indian agriculture-status, importance and role in Indian economy. International Journal of Agriculture and Food Science. 2013;3:343–46.
  3. 3. Surendran U, Sushanth CM, Mammen G, Joseph EJ. Modelling the crop water requirement using FAO-CROPWAT and assessment of water resources for sustainable water resource management: A case study in Palakkad district of humid tropical Kerala, India. Aquatic Procedia. 2015;4:1211–119. https://doi.org/10.1016/j.aqpro.2015.02.154
  4. 4. Singh R, Kumar R. Vulnerability of water availability in India due to climate change: A bottom-up probabilistic Budyko analysis. Geophysical Research Letters. 2015;42:9799–807. https://doi.org/10.1002/2015GL066363
  5. 5. Dhaarna, Kashyap A. Water security modeling in low-income regions in India: A system dynamics approach. Environmental and Sustainability Indicators. 2025;18:100781. https://doi.org/10.1016/j.indic.2025.100781
  6. 6. Patel N, Rajput T. Effect of deficit irrigation on crop growth, yield and quality of onion in subsurface drip irrigation. International Journal of Plant Production. 2013;7:1735–8043.
  7. 7. Fahong W, Xuqing W, Sayre K. Comparison of conventional flood irrigated flat planting with furrow-irrigated raised bed planting for winter wheat in China. Field Crops Research. 2004;87:35–42. https://doi.org/10.1016/j.fcr.2003.09.003
  8. 8. Chiarelli DD, Nanesha H, Sardo M, Ragkos A, Rulli MC. Water saving driven crop reallocation reduces irrigation energy demand in the Mediterranean. Global Food Security. 2025;34:100886. https://doi.org/10.1016/j.gfs.2025.100886
  9. 9. Arshad I, Babar MM, Irfan M, Savona P, Ali W, Farooqui O. Designing a drip/trickle irrigation system using Irripro software. International Journal of Research. 2014;1(11):1–11.
  10. 10. Cassel Sharmasarkar F, Sharmasarkar S, Miller SD, Vance GF, Zhang R. Assessment of drip and flood irrigation on water and fertilizer use efficiencies for sugarbeets. Agricultural Water Management. 2001;51:241–51. https://doi.org/10.1016/S0378-3774(00)00090-1
  11. 11. Santini A, Masiero M, Amato G, Pettenella DM. From flood to drip irrigation: A review of irrigation modernization trade-offs. Water. 2025;17:3018. https://doi.org/10.3390/w17203018
  12. 12. Rajput TBS, Patel N. Water and nitrate movement in drip-irrigated onion under fertigation and irrigation treatments. Agricultural Water Management. 2006;79:293–311. https://doi.org/10.1016/j.agwat.2005.03.009
  13. 13. Tong J, Xiong Y, Lu Y, Li W, Lin W, Xue J, et al. Drip fertigation with moderate nitrogen topdressing rate achieves high nitrogen and water use efficiencies for irrigated wheat. Agronomy. 2025;15:259. https://doi.org/10.3390/agronomy15020259
  14. 14. Singandhupe RB, Rao GGSN, Patil NG, Brahmanand PS. Fertigation studies and irrigation scheduling in drip irrigation system in tomato crop (Lycopersicon esculentum L.). European Journal of Agronomy. 2003;19:327–40. https://doi.org/10.1016/S1161-0301(02)00077-1
  15. 15. Shirgure PS. Citrus fertigation-A technology of water and fertilizers saving. Scientific Journal of Crop Science. 2013;2:56–66.
  16. 16. Barua P, Hazarika R. Studies on fertigation and soil application methods along with mulching on yield and quality of Assam lemon (Citrus limon L. Burmf.). Indian Journal of Horticulture. 2014;71:190–96.
  17. 17. Fan J, Wu L, Zhang F, Yan S, Xiang Y. Evaluation of drip fertigation uniformity affected by injector type, pressure difference and lateral layout. Irrigation and Drainage. 2017;66:520–29. https://doi.org/10.1002/ird.2136
  18. 18. Bracy RP, Parish RL, Rosendale RM. Fertigation uniformity affected by injector type. HortTechnology. 2003;13:103–105. https://doi.org/10.21273/HORTTECH.13.1.0103
  19. 19. Rattan V, Spehia RS. Evaluating the impact of fertigation levels and mulching on growth and yield of garlic (Allium sativum L.). International Journal of Plant & Soil Science. 2025;37:77–87. https://doi.org/10.9734/ijpss/2025/v37i95687
  20. 20. Li J, Meng Y, Li B. Field evaluation of fertigation uniformity as affected by injector type and manufacturing variability of emitters. Irrigation Science. 2006;24:117–25. https://doi.org/10.1007/s00271-006-0039-7
  21. 21. Tang P, Li H, Issaka Z, Chen C. Effect of manifold layout and fertilizer solution concentration on fertilization and flushing times and uniformity of drip irrigation systems. Agricultural Water Management. 2018;201:71–79. https://doi.org/10.1016/j.agwat.2018.01.010
  22. 22. Zheng W, Jiang Y, Ma X, Qi L. Development of a liquid-jet nozzle for fertilizer injection in paddy fields using CFD. Computers and Electronics in Agriculture. 2019;162:167. https://doi.org/10.1016/j.compag.2019.105061
  23. 23. Clark GA, Smajstrla AG. Injecting chemicals into drip irrigation systems. HortTechnology. 1996;6:160–65. https://doi.org/10.21273/HORTTECH.6.3.160
  24. 24. Srivastava SC, Sarma UC, Singh BK, Yadava HS. A profile of garlic production in India: Facts, trends and opportunities. International Journal of Agriculture Environment and Biotechnology. 2012;5:407–12.
  25. 25. Kumar M, Rajput TBS, Patel N. Effect of system pressure and solute concentration on fertilizer injection rate of a venturi for fertigation. Journal of Agricultural Engineering. 2012;49:9–13. https://doi.org/10.52151/jae2012494.1489
  26. 26. Allen RG, Pereira LS, Raes D, Smith M. Crop evapotranspiration: Guidelines for computing crop water requirements. FAO Irrigation and Drainage Paper No. 56. Rome: FAO; 1998.
  27. 27. Ayele BG, Tuji SA, Tuhar AW, Woldemariam AD. Response of garlic (Allium sativum L.) yield and yield components to various irrigation management strategies at the central highland of Ethiopia. Discov Agric. 2025;3:142. https://doi.org/10.1007/s44279-025-00332-2
  28. 28. Singh GPM, Imtiyaz M, Dennis DM. Allium sativum L. yield as influenced by different levels of irrigation water under drip irrigation system. International Journal of Innovation in Engineering Research and Management. 2016;3(1):1011.
  29. 29. Keller J, Bliesner RD. Sprinkler and trickle irrigation. New York: Van Nostrand Reinhold; 1990. https://doi.org/10.1007/978-1-4757-1425-8
  30. 30. El-Hady A, Eldardiry EI. Maximizing crop water productivity of garlic by modified fertilizer management under drip irrigation. International Journal of ChemTech Research. 2016;9:144–50.
  31. 31. Ayele BG, Asseffa S, Tuhar AW. Effect of deficit irrigation under furrow irrigation techniques on garlic (Allium sativum L.) productivity at the central highland of Ethiopia. Water-Energy Nexus. 2023;6:32–45.

Downloads

Download data is not yet available.