A Hydrosuction Siphon System to Remove Particles Using Fan Blades

Author:

Rasool Mohammed Hamid12ORCID,Zainol Mohd Remy Rozainy Mohd Arif13ORCID,Noor Norazian Mohamed45ORCID,Aziz Mohd Sharizal Abdul6ORCID,Zawawi Mohd Hafiz7,A. Wahab Muhammad Khairi1,Abu Bakar Mohd Azmeer8

Affiliation:

1. School of Civil Engineering, Universiti Sains Malaysia, Engineering Campus, Nibong Tebal, Pinang 14300, Malaysia

2. College of Engineering, AL-Qasim Green University, Babylon 51031, Iraq

3. River Engineering and Urban Drainage Research Centre (REDAC), Universiti Sains Malaysia, Nibong Tebal, Penang 14300, Malaysia

4. Faculty of Civil Engineering Technology, Universiti Malaysia Perlis, Perlis, Arau 02600, Malaysia

5. Sustainable Environment Research Group (SERG), Centre of Excellence Geopolymer and Green Technology (CEGeoGTech), Universiti Malaysia Perlis, Perlis, Arau 02600, Malaysia

6. School of Mechanical Engineering, Engineering Campus, Universiti Sains Malaysia, Nibong Tebal, Penang 14300, Malaysia

7. Department of Civil Engineering, College of Engineering, Universiti Tenaga Nasional (UNITEN), Kajang, Selangor 43000, Malaysia

8. School of Humanities, Universiti Sains Malaysia, USM, Pulau Pinang, Penang 11800, Malaysia

Abstract

Sedimentation in dam reservoirs can cause problems that lead to loss of storage capacity and decrease in the flood control volume. Hydrosuction sediment removal is one of the methods used to remove sediments from within a reservoir using the suction energy provided by the effective head. In this study, a new tool has been developed by attaching the reservoir to a suction pipe intake point and using a simple fan blade mechanism for the hydrosuction sediment removal system. This mechanism is used to create a vortex flow to suspend the settled particles. This paper investigated the effects of the fan blade angles, effective head, and inlet height from the surface of layer particles on the performance and efficiency of fan blades hydrosuction sediment removal (FBHSSR) and hydrosuction sediment removal (HSSR) systems based on the geometric scour hole parameters. Results from the experimental tests indicated the effectiveness of the FBHSSR system, with the fan blade angles of 30°, 45°, and 60° leading to approximately 800%, 200%, and 117%, respectively, removed particles greater than those of the HSSR system. Furthermore, the maximum depth and diameter of the scour hole were increased by 206%, 200%, and 137% and 135, 112%, and 117%, respectively, for each angle. The effective head or experiment time also enhanced system performance by increasing the suction discharge, but no change was observed in terms of efficiency. The critical inlet heights for the FBHSSR and HSSR systems are 1 time and 2.54 times, respectively, more than the diameter of the suction pipe. Thus, it can be concluded that using fan blades in HSSR systems is a good approach to improve the properties of the scour hole.

Publisher

MDPI AG

Subject

Water Science and Technology,Aquatic Science,Geography, Planning and Development,Biochemistry

Reference21 articles.

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3. Zarris, D., Evdoxia, L.E., Panagoulia, D.G., Lykoudi, E., and Panagoulia, D. (2023, January 12). Sediment Yield Assessment in Greece Catchment Hydrology under GISS-Climate Changes View Project Transient Climate Models and Irrigation View Project Sediment Yield Assessment in Greece. Available online: https://www.researchgate.net/publication/268030258_Sediment_Yield_Assessment_in_Greece?channel=doi&linkId=545f5af60cf2c1a63bfda7ee&showFulltext=true.

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