Experimental and Simulation Investigation on the Kinetic Energy Dissipation Rate of a Fixed Spray-Plate Sprinkler

Sprinkler irrigation is promoted due to its remarkable advantages in water conservation, but the high energy consumption limits its development in a situation of energy scarcity. In order to determine the energy consumption of a fixed spray-plate sprinkler (FSPS), its discharge and initial trajector...

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Main Authors: Yisheng Zhang, Bin Sun, Hongyuan Fang, Delan Zhu, Lingxia Yang, Zhansong Li
Format: Article
Language:English
Published: MDPI AG 2018-09-01
Series:Water
Subjects:
Online Access:http://www.mdpi.com/2073-4441/10/10/1365
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spelling doaj-a01800229584433199b1562288c7e6ed2020-11-25T00:50:08ZengMDPI AGWater2073-44412018-09-011010136510.3390/w10101365w10101365Experimental and Simulation Investigation on the Kinetic Energy Dissipation Rate of a Fixed Spray-Plate SprinklerYisheng Zhang0Bin Sun1Hongyuan Fang2Delan Zhu3Lingxia Yang4Zhansong Li5School of Water Conservancy and Environment, Zhengzhou University, Zhengzhou 450001, ChinaSchool of Water Conservancy and Environment, Zhengzhou University, Zhengzhou 450001, ChinaSchool of Water Conservancy and Environment, Zhengzhou University, Zhengzhou 450001, ChinaCollege of Water Resources and Architectural Engineering, Northwest A&F University, Yangling 712100, Shaanxi, ChinaSchool of Water Conservancy and Environment, Zhengzhou University, Zhengzhou 450001, ChinaSchool of Water Conservancy and Environment, Zhengzhou University, Zhengzhou 450001, ChinaSprinkler irrigation is promoted due to its remarkable advantages in water conservation, but the high energy consumption limits its development in a situation of energy scarcity. In order to determine the energy consumption of a fixed spray-plate sprinkler (FSPS), its discharge and initial trajectory velocity were investigated using a particle image velocimetry (PIV) technique and computational fluid dynamics (CFD) analyses. A nozzle diameter of 4.76 mm was used under windless conditions. Overall, good agreement between simulation results and experimental values was obtained. On the premise that the simulation method produced high accuracy, a series of simulations was performed with different nozzle diameters. The water distribution pattern, stream trajectory velocity and kinetic energy dissipation were analyzed. The results show that the jet produced at the nozzle is split by grooves after it hits the plate, with separation occurring earlier with decreasing nozzle diameter. The area of the flow cross-section of the outlet is mainly influenced by nozzle diameter rather than working pressure. The initial trajectory velocity of the grooves increases logarithmically with increasing working pressure. A high working pressure may not cause large kinetic energy dissipation. The dissipation rate of the FSPS ranged from 28.01–50.97%, i.e., a large kinetic energy rate was observed. To reduce this energy dissipation and improve water use efficiency, the structure of the FSPS should be optimized in further research.http://www.mdpi.com/2073-4441/10/10/1365fixed spray-plate sprinklerjet velocitykinetic energy dissipationsimulation
collection DOAJ
language English
format Article
sources DOAJ
author Yisheng Zhang
Bin Sun
Hongyuan Fang
Delan Zhu
Lingxia Yang
Zhansong Li
spellingShingle Yisheng Zhang
Bin Sun
Hongyuan Fang
Delan Zhu
Lingxia Yang
Zhansong Li
Experimental and Simulation Investigation on the Kinetic Energy Dissipation Rate of a Fixed Spray-Plate Sprinkler
Water
fixed spray-plate sprinkler
jet velocity
kinetic energy dissipation
simulation
author_facet Yisheng Zhang
Bin Sun
Hongyuan Fang
Delan Zhu
Lingxia Yang
Zhansong Li
author_sort Yisheng Zhang
title Experimental and Simulation Investigation on the Kinetic Energy Dissipation Rate of a Fixed Spray-Plate Sprinkler
title_short Experimental and Simulation Investigation on the Kinetic Energy Dissipation Rate of a Fixed Spray-Plate Sprinkler
title_full Experimental and Simulation Investigation on the Kinetic Energy Dissipation Rate of a Fixed Spray-Plate Sprinkler
title_fullStr Experimental and Simulation Investigation on the Kinetic Energy Dissipation Rate of a Fixed Spray-Plate Sprinkler
title_full_unstemmed Experimental and Simulation Investigation on the Kinetic Energy Dissipation Rate of a Fixed Spray-Plate Sprinkler
title_sort experimental and simulation investigation on the kinetic energy dissipation rate of a fixed spray-plate sprinkler
publisher MDPI AG
series Water
issn 2073-4441
publishDate 2018-09-01
description Sprinkler irrigation is promoted due to its remarkable advantages in water conservation, but the high energy consumption limits its development in a situation of energy scarcity. In order to determine the energy consumption of a fixed spray-plate sprinkler (FSPS), its discharge and initial trajectory velocity were investigated using a particle image velocimetry (PIV) technique and computational fluid dynamics (CFD) analyses. A nozzle diameter of 4.76 mm was used under windless conditions. Overall, good agreement between simulation results and experimental values was obtained. On the premise that the simulation method produced high accuracy, a series of simulations was performed with different nozzle diameters. The water distribution pattern, stream trajectory velocity and kinetic energy dissipation were analyzed. The results show that the jet produced at the nozzle is split by grooves after it hits the plate, with separation occurring earlier with decreasing nozzle diameter. The area of the flow cross-section of the outlet is mainly influenced by nozzle diameter rather than working pressure. The initial trajectory velocity of the grooves increases logarithmically with increasing working pressure. A high working pressure may not cause large kinetic energy dissipation. The dissipation rate of the FSPS ranged from 28.01–50.97%, i.e., a large kinetic energy rate was observed. To reduce this energy dissipation and improve water use efficiency, the structure of the FSPS should be optimized in further research.
topic fixed spray-plate sprinkler
jet velocity
kinetic energy dissipation
simulation
url http://www.mdpi.com/2073-4441/10/10/1365
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