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Research Article | Open Access

A real-time pricing dynamic algorithm for a smart grid with multi-pricing and multiple energy generation

Linsen Song( )Yichen Du
School of Mathematical Sciences, Henan Institute of Science and Technology, Xinxiang 453003, China
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Abstract

With the proposal of the new power system, power supply from renewable energy sources and traditional power supply have emerged as the future development directions of the power grid, while the traditional pricing mechanisms are facing new challenges. Considering the different characteristics of renewable energy power supply and traditional power supply, such as being clean and sustainable, but unstable, for renewable energy power supply, and being stable and technologically mature, but causing significant pollution, for traditional power supply, a multi-price model with the cost of pollution treatment under the multi-energy electricity generation was established in this paper. A distributed algorithm with the non-dominated sorting genetic algorithm (NSGA-Ⅱ) was also proposed. In the model, the power supply side includes traditional energy generation, renewable energy generation, and the energy storage device. The proposed algorithm was designed using Lagrangian duality theory, and the multi-price is obtained by solving the different lagrange multipliers. Finally, the numerical results show that the model is reasonable when comparing the obtained price and social welfare with that untreated-pollution model, as well as a single supply model. Also, the proposed algorithm always has better computational efficiency, when compared with PSO, HS, and GA algorithms. The proposed model and algorithm provide a new idea and method for the optimal scheduling of a smart grid.

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Electronic Research Archive
Pages 2989-3006

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Cite this article:
Song L, Du Y. A real-time pricing dynamic algorithm for a smart grid with multi-pricing and multiple energy generation. Electronic Research Archive, 2025, 33(5): 2989-3006. https://doi.org/10.3934/era.2025131

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Received: 08 February 2025
Revised: 17 April 2025
Accepted: 07 May 2025
Published: 15 May 2025
©2025 the Author(s), licensee AIMS Press.

This is an open access article distributed under the terms of the Creative Commons Attribution License (http://creativecommons.org/licenses/by/4.0)