

Improving the reliability of the energy balance management process in hybrid power complexes with green hydrogen and energy storage
https://doi.org/10.15518/isjaee.2023.09.046-061
Abstract
In this paper, certain issues envisaged in the framework of development of design methodology for intelligent autonomous distributed hybrid power complexes (ADHPC) with green hydrogen and energy storage, functioning in grid mode and in the mode of interaction with the global (national) grid (GN) have been solved. Depending on their energy deficit or surplus, relative to the global grid, ADHPCs can operate as a load or as an energy source, respectively, as follows: - based on the analysis of the energy balance management process in the ADHPC, a reasonable choice of the structure of the system of accumulation and distribution of power flows (SADCF) was made from the point of view of increasing the reliability of its functioning and ensuring the physical feasibility of the energy balance management process in this structure, i.e. keeping the actual power consumption of the consumers close to the required rated power at each given time t. This is achieved by including a condenser connected to the SADCF system on its assembly and distribution bus and a storage system BS with double-level ((BS1, BS2), double-circuit ((BS1(1), BS1(2)), (BS2(1), BS2(2))) structure, whereby: BS1of the level 1 - to manage the capacity balance in the SADCF under normal ADHPC regime and the variation of green hydrogen and consumption capacities within their confidence intervals assessed at the design stage; BS2 of the level 2 - to coordinate ADHPC and GN modes of operation and to control, together with BS1 of the level 1, GN, diesel generator (DG), the power balance in the SADCF when the ADHPC fails and when RES and consumption power are outside their confidence intervals; alternating charge/discharge operation of the parallel circuits will extend the life of the BS system; – a comprehensive definition of optimal ADHPC system situational energy balance management task is formulated.
About the Authors
S. AsanovaKyrgyzstan
cand. tehn. sciences, associate professor, head of the department
department of “Theoretical and General Electrical Engineering”
Education: Academy master's degree in electrical stations, Kyrgyz Technical University, 1999. Research area: use of Petri network apparatus for compiling self-organizing multi component computing algorithms for solving problems in electrical power. Publications: more than 50 scientific articles, 3 patents for invention (Kyrgyzpatent)
720044; Ch. Aitmatov Avenue, 66; Bishkek
tel: +996 550 501 896
fax: +996 550 501 896
M. Safaraliev
Russian Federation
PhD, Senior Researcher
Department of "Automated Electrical Systems"
Education: academic. Master's degree in Electric Stations, Tajik Technical University, 2016. Awards and scientific awards: Scholarship of the Governor of the Sverdlovsk Region for outstanding scientific activity, 2020. Research interests: optimization of energy flows, model optimization of energy systems development, short-term, medium-term and long-term load and generation forecasting. Publications: more than 100 scientific articles
620002; 19 Mira Str.; Yekaterinburg
I. Zicmane
Latvia
Dr. sc. ing., Professor
Institute of Power Engineering; Faculty of Electrical and Environmental Engineering
Education: academic. Master's degree in Electric power engineering, Riga Technical University (RTU), 2000. Research interests: transition process, optimization of energy flows, model optimization of energy systems development. Publications: more than 150 scientific articles
LV-1048; Azenes Str., 12/1; Riga
S. Suerkulov
Kyrgyzstan
postgraduate student
Place of work: Thermal power plant of the city of Bishkek. Education: Master's degree in Electrical Power Engineering and Electrical Engineering. Research area: Management of the power supply system of regional industrial enterprises in order to optimize its operation mode. Publications: 6 scientific articles, 1 patent for invention (Kyrgyzpatent)
720044; Ch. Aitmatov Avenue, 66; Bishkek
S. Kokin
Russian Federation
doctor tech. sciences, Professor
Department of «Automated Electrical Systems»
Education: еlectric engineer in «Electrical Stations», UPI. S. M. Kirova 1978.
Awards and scientific awards: honorary title «Honorary Energy» Ministry of Energy of the Russian Federation. Research interests: еvaluation of the technical condition of the energy equipment, diagnostic methods, predicting the residual equipment resource and optimization of distribution systems. Publications: more than 100 scientific articles
620002; 19 Mira Str.; Yekaterinburg
D. Asanova
Kyrgyzstan
postgraduate student
Place of work: Thermal power plant of the city of Bishkek, main switchboard department. Education: Master's degree in Electrical Power Engineering and Electrical Engineering. Research area: development and research of regional power supply systems with renewable energy sources. Publications: 5 scientific articles, 1 patent for invention (Kyrgyzpatent)
720044; Ch. Aitmatov Avenue, 66; Bishkek
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Review
For citations:
Asanova S., Safaraliev M., Zicmane I., Suerkulov S., Kokin S., Asanova D. Improving the reliability of the energy balance management process in hybrid power complexes with green hydrogen and energy storage. Alternative Energy and Ecology (ISJAEE). 2023;(9):46-61. https://doi.org/10.15518/isjaee.2023.09.046-061