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Article

Solving the Real Power Limitations in the Dynamic Economic Dispatch of Large-Scale Thermal Power Units under the Effects of Valve-Point Loading and Ramp-Rate Limitations

1
School of Software and Electrical Engineering, Swinburne University of Technology, Hawthorn, VIC 3122, Australia
2
School of Engineering, Deakin University, Waurn Ponds, VIC 3216, Australia
*
Author to whom correspondence should be addressed.
Sustainability 2021, 13(3), 1274; https://doi.org/10.3390/su13031274
Submission received: 2 December 2020 / Revised: 12 January 2021 / Accepted: 21 January 2021 / Published: 26 January 2021
(This article belongs to the Section Sustainable Engineering and Science)

Abstract

Few non-traditional optimization techniques are applied to the dynamic economic dispatch (DED) of large-scale thermal power units (TPUs), e.g., 1000 TPUs, that consider the effects of valve-point loading with ramp-rate limitations. This is a complicated multiple mode problem. In this investigation, a novel optimization technique, namely, a multi-gradient particle swarm optimization (MG-PSO) algorithm with two stages for exploring and exploiting the search space area, is employed as an optimization tool. The M particles (explorers) in the first stage are used to explore new neighborhoods, whereas the M particles (exploiters) in the second stage are used to exploit the best neighborhood. The M particles’ negative gradient variation in both stages causes the equilibrium between the global and local search space capabilities. This algorithm’s authentication is demonstrated on five medium-scale to very large-scale power systems. The MG-PSO algorithm effectively reduces the difficulty of handling the large-scale DED problem, and simulation results confirm this algorithm’s suitability for such a complicated multi-objective problem at varying fitness performance measures and consistency. This algorithm is also applied to estimate the required generation in 24 h to meet load demand changes. This investigation provides useful technical references for economic dispatch operators to update their power system programs in order to achieve economic benefits.
Keywords: dynamic economic dispatch; valve-point loading; ramp-rate limitations; multi-gradient PSO algorithm; real power of large-scale thermal power units dynamic economic dispatch; valve-point loading; ramp-rate limitations; multi-gradient PSO algorithm; real power of large-scale thermal power units

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MDPI and ACS Style

Al-Bahrani, L.; Seyedmahmoudian, M.; Horan, B.; Stojcevski, A. Solving the Real Power Limitations in the Dynamic Economic Dispatch of Large-Scale Thermal Power Units under the Effects of Valve-Point Loading and Ramp-Rate Limitations. Sustainability 2021, 13, 1274. https://doi.org/10.3390/su13031274

AMA Style

Al-Bahrani L, Seyedmahmoudian M, Horan B, Stojcevski A. Solving the Real Power Limitations in the Dynamic Economic Dispatch of Large-Scale Thermal Power Units under the Effects of Valve-Point Loading and Ramp-Rate Limitations. Sustainability. 2021; 13(3):1274. https://doi.org/10.3390/su13031274

Chicago/Turabian Style

Al-Bahrani, Loau, Mehdi Seyedmahmoudian, Ben Horan, and Alex Stojcevski. 2021. "Solving the Real Power Limitations in the Dynamic Economic Dispatch of Large-Scale Thermal Power Units under the Effects of Valve-Point Loading and Ramp-Rate Limitations" Sustainability 13, no. 3: 1274. https://doi.org/10.3390/su13031274

APA Style

Al-Bahrani, L., Seyedmahmoudian, M., Horan, B., & Stojcevski, A. (2021). Solving the Real Power Limitations in the Dynamic Economic Dispatch of Large-Scale Thermal Power Units under the Effects of Valve-Point Loading and Ramp-Rate Limitations. Sustainability, 13(3), 1274. https://doi.org/10.3390/su13031274

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