Modeling the Application Depth and Water Distribution Uniformity of a Linearly Moved Irrigation System

A model of a linearly moved irrigation system (LMIS) has been developed to calculate the water application depth and coefficient of uniformity (CU), and an experimental sample was used to verify the accuracy of the model. The performance testing of the LMIS equipped with 69-kPa and 138-kPa sprinkler...

Full description

Bibliographic Details
Main Authors: Junping Liu, Xingye Zhu, Shouqi Yuan, Alexander Fordjour
Format: Article
Language:English
Published: MDPI AG 2019-04-01
Series:Water
Subjects:
Online Access:https://www.mdpi.com/2073-4441/11/4/827
id doaj-1a748f3e22744780a75521cadba8ab70
record_format Article
spelling doaj-1a748f3e22744780a75521cadba8ab702020-11-24T21:21:15ZengMDPI AGWater2073-44412019-04-0111482710.3390/w11040827w11040827Modeling the Application Depth and Water Distribution Uniformity of a Linearly Moved Irrigation SystemJunping Liu0Xingye Zhu1Shouqi Yuan2Alexander Fordjour3Research Center of Fluid Machinery Engineering and Technology, Jiangsu University, Zhenjiang 212013, ChinaResearch Center of Fluid Machinery Engineering and Technology, Jiangsu University, Zhenjiang 212013, ChinaResearch Center of Fluid Machinery Engineering and Technology, Jiangsu University, Zhenjiang 212013, ChinaResearch Center of Fluid Machinery Engineering and Technology, Jiangsu University, Zhenjiang 212013, ChinaA model of a linearly moved irrigation system (LMIS) has been developed to calculate the water application depth and coefficient of uniformity (CU), and an experimental sample was used to verify the accuracy of the model. The performance testing of the LMIS equipped with 69-kPa and 138-kPa sprinkler heads was carried out in an indoor laboratory. The LMIS was towed by a winch with a 1.0 cycle/min pulsing frequency while operating at percent-timer settings of 30, 45, 60, 75, and 90%, corresponding to average moving speeds of 1.5, 2.3, 3.3, 4.0, and 4.7 m min<sup>&#8722;1</sup>, respectively. The application depth and CU obtained under various speed conditions were compared between the measured and model-simulated data. The model calculation accuracy was high for both operating pressures of 69 and 138 kPa. The measured application depths were much larger than the triangular-shaped predictions of the simulated application depth and were between the parabolic-shaped predictions and the elliptical-shaped predictions of the simulated application depth. The results also indicate that the operating pressure and moving speed were not significant factors that affected the resulting CU values. For the parabolic- and elliptical-shaped predictions, the deviations between the measured and model-simulated values were within 5%, except for several cases at moving speeds of 2.3 and 4.0 m min<sup>&#8722;1</sup>. The measured water distribution pattern of the individual sprinklers could be represented by both elliptical- and parabolic-shaped predictions, which are accurate and reliable for simulating the application performances of the LMIS. The most innovative aspect of the proposed model is that the water application depths and CU values of the irrigation system can be determined at any moving speed.https://www.mdpi.com/2073-4441/11/4/827linearly moved irrigation systemapplication depthmoving speeduniformity coefficient
collection DOAJ
language English
format Article
sources DOAJ
author Junping Liu
Xingye Zhu
Shouqi Yuan
Alexander Fordjour
spellingShingle Junping Liu
Xingye Zhu
Shouqi Yuan
Alexander Fordjour
Modeling the Application Depth and Water Distribution Uniformity of a Linearly Moved Irrigation System
Water
linearly moved irrigation system
application depth
moving speed
uniformity coefficient
author_facet Junping Liu
Xingye Zhu
Shouqi Yuan
Alexander Fordjour
author_sort Junping Liu
title Modeling the Application Depth and Water Distribution Uniformity of a Linearly Moved Irrigation System
title_short Modeling the Application Depth and Water Distribution Uniformity of a Linearly Moved Irrigation System
title_full Modeling the Application Depth and Water Distribution Uniformity of a Linearly Moved Irrigation System
title_fullStr Modeling the Application Depth and Water Distribution Uniformity of a Linearly Moved Irrigation System
title_full_unstemmed Modeling the Application Depth and Water Distribution Uniformity of a Linearly Moved Irrigation System
title_sort modeling the application depth and water distribution uniformity of a linearly moved irrigation system
publisher MDPI AG
series Water
issn 2073-4441
publishDate 2019-04-01
description A model of a linearly moved irrigation system (LMIS) has been developed to calculate the water application depth and coefficient of uniformity (CU), and an experimental sample was used to verify the accuracy of the model. The performance testing of the LMIS equipped with 69-kPa and 138-kPa sprinkler heads was carried out in an indoor laboratory. The LMIS was towed by a winch with a 1.0 cycle/min pulsing frequency while operating at percent-timer settings of 30, 45, 60, 75, and 90%, corresponding to average moving speeds of 1.5, 2.3, 3.3, 4.0, and 4.7 m min<sup>&#8722;1</sup>, respectively. The application depth and CU obtained under various speed conditions were compared between the measured and model-simulated data. The model calculation accuracy was high for both operating pressures of 69 and 138 kPa. The measured application depths were much larger than the triangular-shaped predictions of the simulated application depth and were between the parabolic-shaped predictions and the elliptical-shaped predictions of the simulated application depth. The results also indicate that the operating pressure and moving speed were not significant factors that affected the resulting CU values. For the parabolic- and elliptical-shaped predictions, the deviations between the measured and model-simulated values were within 5%, except for several cases at moving speeds of 2.3 and 4.0 m min<sup>&#8722;1</sup>. The measured water distribution pattern of the individual sprinklers could be represented by both elliptical- and parabolic-shaped predictions, which are accurate and reliable for simulating the application performances of the LMIS. The most innovative aspect of the proposed model is that the water application depths and CU values of the irrigation system can be determined at any moving speed.
topic linearly moved irrigation system
application depth
moving speed
uniformity coefficient
url https://www.mdpi.com/2073-4441/11/4/827
work_keys_str_mv AT junpingliu modelingtheapplicationdepthandwaterdistributionuniformityofalinearlymovedirrigationsystem
AT xingyezhu modelingtheapplicationdepthandwaterdistributionuniformityofalinearlymovedirrigationsystem
AT shouqiyuan modelingtheapplicationdepthandwaterdistributionuniformityofalinearlymovedirrigationsystem
AT alexanderfordjour modelingtheapplicationdepthandwaterdistributionuniformityofalinearlymovedirrigationsystem
_version_ 1726000147159056384