A Computed River Flow-Based Turbine Controller on a Programmable Logic Controller for Run-Off River Hydroelectric Systems

The main feature of a run-off river hydroelectric system is a small size intake pond that overspills when river flow is more than turbines’ intake. As river flow fluctuates, a large proportion of the potential energy is wasted due to the spillages which can occur when turbines are operated manually....

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Main Authors: Razali Jidin, Abdul Bahari Othman
Format: Article
Language:English
Published: MDPI AG 2017-10-01
Series:Energies
Subjects:
Online Access:https://www.mdpi.com/1996-1073/10/11/1717
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author Razali Jidin
Abdul Bahari Othman
author_facet Razali Jidin
Abdul Bahari Othman
author_sort Razali Jidin
collection DOAJ
description The main feature of a run-off river hydroelectric system is a small size intake pond that overspills when river flow is more than turbines’ intake. As river flow fluctuates, a large proportion of the potential energy is wasted due to the spillages which can occur when turbines are operated manually. Manual operation is often adopted due to unreliability of water level-based controllers at many remote and unmanned run-off river hydropower plants. In order to overcome these issues, this paper proposes a novel method by developing a controller that derives turbine output set points from computed mass flow rate of rivers that feed the hydroelectric system. The computed flow is derived by summation of pond volume difference with numerical integration of both turbine discharge flows and spillages. This approach of estimating river flow allows the use of existing sensors rather than requiring the installation of new ones. All computations, including the numerical integration, have been realized as ladder logics on a programmable logic controller. The implemented controller manages the dynamic changes in the flow rate of the river better than the old point-level based controller, with the aid of a newly installed water level sensor. The computed mass flow rate of the river also allows the controller to straightforwardly determine the number of turbines to be in service with considerations of turbine efficiencies and auxiliary power conservation.
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spelling doaj.art-e610ed714e8044e78f26af1058334d1c2022-12-22T04:24:15ZengMDPI AGEnergies1996-10732017-10-011011171710.3390/en10111717en10111717A Computed River Flow-Based Turbine Controller on a Programmable Logic Controller for Run-Off River Hydroelectric SystemsRazali Jidin0Abdul Bahari Othman1College of Engineering, Universiti Tenaga Nasional (UNITEN), Jalan Ikram-Uniten, Kajang 43000, Selangor, MalaysiaGeneration Research Department, Tenaga Nasional Berhad Research (TNBR), Kajang 43000, Selangor, MalaysiaThe main feature of a run-off river hydroelectric system is a small size intake pond that overspills when river flow is more than turbines’ intake. As river flow fluctuates, a large proportion of the potential energy is wasted due to the spillages which can occur when turbines are operated manually. Manual operation is often adopted due to unreliability of water level-based controllers at many remote and unmanned run-off river hydropower plants. In order to overcome these issues, this paper proposes a novel method by developing a controller that derives turbine output set points from computed mass flow rate of rivers that feed the hydroelectric system. The computed flow is derived by summation of pond volume difference with numerical integration of both turbine discharge flows and spillages. This approach of estimating river flow allows the use of existing sensors rather than requiring the installation of new ones. All computations, including the numerical integration, have been realized as ladder logics on a programmable logic controller. The implemented controller manages the dynamic changes in the flow rate of the river better than the old point-level based controller, with the aid of a newly installed water level sensor. The computed mass flow rate of the river also allows the controller to straightforwardly determine the number of turbines to be in service with considerations of turbine efficiencies and auxiliary power conservation.https://www.mdpi.com/1996-1073/10/11/1717hydropowerhydroelectricrun-off river hydroelectricrenewable energyriver flowcomputed river flowturbine controllerprogrammable logic controllerladder logic
spellingShingle Razali Jidin
Abdul Bahari Othman
A Computed River Flow-Based Turbine Controller on a Programmable Logic Controller for Run-Off River Hydroelectric Systems
Energies
hydropower
hydroelectric
run-off river hydroelectric
renewable energy
river flow
computed river flow
turbine controller
programmable logic controller
ladder logic
title A Computed River Flow-Based Turbine Controller on a Programmable Logic Controller for Run-Off River Hydroelectric Systems
title_full A Computed River Flow-Based Turbine Controller on a Programmable Logic Controller for Run-Off River Hydroelectric Systems
title_fullStr A Computed River Flow-Based Turbine Controller on a Programmable Logic Controller for Run-Off River Hydroelectric Systems
title_full_unstemmed A Computed River Flow-Based Turbine Controller on a Programmable Logic Controller for Run-Off River Hydroelectric Systems
title_short A Computed River Flow-Based Turbine Controller on a Programmable Logic Controller for Run-Off River Hydroelectric Systems
title_sort computed river flow based turbine controller on a programmable logic controller for run off river hydroelectric systems
topic hydropower
hydroelectric
run-off river hydroelectric
renewable energy
river flow
computed river flow
turbine controller
programmable logic controller
ladder logic
url https://www.mdpi.com/1996-1073/10/11/1717
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