Research on Multi-Objective Energy Management of Renewable Energy Power Plant with Electrolytic Hydrogen Production

Author:

Shi Tao12ORCID,Gu Libo1,Xu Zeyan1,Sheng Jialin1

Affiliation:

1. College of Automation, Nanjing University of Posts and Telecommunications, Nanjing 210023, China

2. Institute of Advanced Technology for Carbon Neutrality, Nanjing University of Posts and Telecommunications, Nanjing 210023, China

Abstract

This study focuses on a renewable energy power plant equipped with electrolytic hydrogen production system, aiming to optimize energy management to smooth renewable energy generation fluctuations, participate in peak shaving auxiliary services, and increase the absorption space for renewable energy. A multi-objective energy management model and corresponding algorithms were developed, incorporating considerations of cost, pricing, and the operational constraints of a renewable energy generating unit and electrolytic hydrogen production system. By introducing uncertain programming, the uncertainty issues associated with renewable energy output were successfully addressed and an improved particle swarm optimization algorithm was employed for solving. A simulation system established on the Matlab platform verified the effectiveness of the model and algorithms, demonstrating that this approach can effectively meet the demands of the electricity market while enhancing the utilization rate of renewable energies.

Funder

National Natural Science Foundation of China

Publisher

MDPI AG

Reference27 articles.

1. Review on Key Technologies of Hydrogen Generation, Storage and Transportation Based on Multi-Energy Complementary Renewable Energy;Li;Trans. China Electrotech. Soc.,2021

2. Optimal Configuration of Energy System in Iron and Steel Park Driven by Hydrogen Energy;Zhang;Autom. Electr. Power Syst.,2022

3. Medium and Long-term Forecast of Hydrogen Load in Unified Energy System;Zhang;Proc. CSEE,2021

4. Overview of Research on Wind Power Coupled with Hydrogen Production Technology;Cai;Autom. Electr. Power Syst.,2014

5. Large-scale Energy Storage Technology for Global Energy Internet;Jing;Smart Grid,2015

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