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Actively heated fiber optics method to monitor three-dimensional wetting patterns under drip irrigation

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  • Vidana Gamage, D.N.
  • Biswas, A.
  • Strachan, I.B.

Abstract

Monitoring dynamics in wetting patterns under drip irrigation is important to optimize the frequency and duration of irrigation, the emitter discharge rate and the spacing. However, difficulties in measurement of soil water content (SWC) at high spatial and temporal resolution and in three-dimensions (3D) restricts direct monitoring around drip emitters. Indirect methods such as actively heated fiber optics (AHFO) has shown the potential to measure SWC at sub-meter intervals. Therefore, the objective of this study was to examine the feasibility of the AHFO method to monitor 3D spatial and temporal variations in wetting patterns under a single drip emitter. Heat pulses of three minutes duration were applied at a rate of 20 Wm−1 through a helically wrapped fiber optic cable in a soil column before, during, and after irrigation. A distributed temperature sensing (DTS) instrument was used to estimate the cumulative temperature increase (Tcum) at locations along the cable. An indirect relationship between Tcum and SWC was developed and validated using the SWC measurements determined by the gravimetric method. Data from the network of 3D points (from fiber optic cable) were used to generate 3D surfaces of SWC. In comparison with the gravimetric method, AHFO showed predictive accuracies; root mean squared error (RMSE) of 0.03 m3 m−3 for SWC <0.05 m3 m−3 (N = 17), 0.03 m3 m−3 for SWC 0.05–0.3 m3 m−3 (N = 19) and, 0.05 m3 m−3 for SWC >0.3 m3 m−3 (N = 6). The time evolution of the 3D SWC helped to identify wetting bulb formation, movement of the wetting front and changes in the dimensions (wetted radius and depth) of wetting bulbs. This study showed not only the potential of AHFO to help design drip emitters but also the ability to provide high resolution SWC information to improve water movement models in the future.

Suggested Citation

  • Vidana Gamage, D.N. & Biswas, A. & Strachan, I.B., 2018. "Actively heated fiber optics method to monitor three-dimensional wetting patterns under drip irrigation," Agricultural Water Management, Elsevier, vol. 210(C), pages 243-251.
  • Handle: RePEc:eee:agiwat:v:210:y:2018:i:c:p:243-251
    DOI: 10.1016/j.agwat.2018.08.019
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    References listed on IDEAS

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    1. Martínez-Gimeno, M.A. & Bonet, L. & Provenzano, G. & Badal, E. & Intrigliolo, D.S. & Ballester, C., 2018. "Assessment of yield and water productivity of clementine trees under surface and subsurface drip irrigation," Agricultural Water Management, Elsevier, vol. 206(C), pages 209-216.
    2. Kandelous, Maziar M. & Simunek, Jirí, 2010. "Numerical simulations of water movement in a subsurface drip irrigation system under field and laboratory conditions using HYDRUS-2D," Agricultural Water Management, Elsevier, vol. 97(7), pages 1070-1076, July.
    3. Al-Ogaidi, Ahmed A.M. & Wayayok, Aimrun & Rowshon, M.K. & Abdullah, Ahmed Fikri, 2016. "Wetting patterns estimation under drip irrigation systems using an enhanced empirical model," Agricultural Water Management, Elsevier, vol. 176(C), pages 203-213.
    4. Wang, Feng-Xin & Kang, Yaohu & Liu, Shi-Ping, 2006. "Effects of drip irrigation frequency on soil wetting pattern and potato growth in North China Plain," Agricultural Water Management, Elsevier, vol. 79(3), pages 248-264, February.
    5. Moncef, Hammami & Khemaies, Zayani, 2016. "An analytical approach to predict the moistened bulb volume beneath a surface point source," Agricultural Water Management, Elsevier, vol. 166(C), pages 123-129.
    6. Santos, Leonardo N.S. dos & Matsura, Edson E. & Gonçalves, Ivo Z. & Barbosa, Eduardo A.A. & Nazário, Aline A. & Tuta, Natalia F. & Elaiuy, Marcelo C.L. & Feitosa, Daniel R.C. & de Sousa, Allan C.M., 2016. "Water storage in the soil profile under subsurface drip irrigation: Evaluating two installation depths of emitters and two water qualities," Agricultural Water Management, Elsevier, vol. 170(C), pages 91-98.
    7. Elmaloglou, S. & Diamantopoulos, E., 2009. "Simulation of soil water dynamics under subsurface drip irrigation from line sources," Agricultural Water Management, Elsevier, vol. 96(11), pages 1587-1595, November.
    8. Fernandez-Galvez, J. & Simmonds, L.P., 2006. "Monitoring and modelling the three-dimensional flow of water under drip irrigation," Agricultural Water Management, Elsevier, vol. 83(3), pages 197-208, June.
    9. Yang, Kaijing & Wang, Fengxin & Shock, Clinton C. & Kang, Shaozhong & Huo, Zailin & Song, Na & Ma, Dan, 2017. "Potato performance as influenced by the proportion of wetted soil volume and nitrogen under drip irrigation with plastic mulch," Agricultural Water Management, Elsevier, vol. 179(C), pages 260-270.
    10. Satriani, A. & Loperte, A. & Soldovieri, F., 2015. "Integrated geophysical techniques for sustainable management of water resource. A case study of local dry bean versus commercial common bean cultivars," Agricultural Water Management, Elsevier, vol. 162(C), pages 57-66.
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