The Selection of Energy Storage for a Micro–Gas-Turbine Plant Operating Autonomously in the Conditions of the North

Thermal Engineering - Tập 70 - Trang 1051-1061 - 2023
A. B. Tarasenko1, O. S. Popel1, S. V. Monin2
1Joint Institute for High Temperatures, Russian Academy of Sciences, Moscow, Russia
2Research and Production Association Lianozovsky Electromechanical Plant, Moscow, Russia

Tóm tắt

On the example of a micro–gas-turbine plant (MGTU) of the C30 Capstone type, an analysis of various options for the use of modern electric energy storage devices as part of a buffer battery was carried out and compared. Gas microturbines with a unit capacity of several tens to hundreds of kilowatts appeared on the market in the 1970s and have become increasingly widely used in autonomous and distributed generation systems. Their competitiveness in comparison with diesel and gas reciprocating power plants is ensured primarily by achieving comparable efficiency values with competitors as a result of the use of a regenerative thermodynamic cycle with highly efficient recuperative heat exchangers and high-speed turbogenerator equipment with air bearings instead of oil bearings. This significantly reduces the operational requirements for the frequency of maintenance of power plants, and also expands the possibilities of using various types of liquid and gaseous fuels (polyfuel) available in the operation area. An important feature of micro–gas-turbine power plants is the DC link and the buffer storage of electrical energy in the power output circuit, which allow one to effectively control the current parameters (regulate them) without changing the engine speed. In traditional versions of such power plants, as a rule, lead-acid batteries are used as a buffer energy storage. The authors considered options for replacing them with supercapacitors and batteries of various types, taking into account such operational factors as the predominance of low ambient temperatures during most of the year (arctic conditions), difficulties in logistics, maintenance conditions for power plants of these batteries, and their considerable cost. The weight and size characteristics of drives are estimated based on different types of elements with an emphasis on products of Russian manufacturers. It is concluded that when operating an MGTU in harsh climatic conditions, it is advisable to use supercapacitor batteries in their buffer storage, despite their low specific energy consumption and high cost.

Tài liệu tham khảo

S. K. Ayaz, O. Altuntas, and H. Caliskan, “Enhanced life cycle modelling of a micro gas turbine fuelled with various fuels for sustainable electricity production,” Renewable Sustainable Energy Rev. 149, 111323 (2021). https://doi.org/10.1016/j.rser.2021.111323 S. Mukherjee, M. Dutta, A. Ghosh, and A. Chatterjee, “A year-long study on PM2.5 and its carbonaceous components over eastern Himalaya in India: Contributions of local and transported fossil fuel and biomass burning during premonsoon,” Environ. Res. 212, 113546 (2022). https://doi.org/10.1016/j.envres.2022.113546 Z. Ji, X. Yu, W. Li, and D. Niu, “A multi-criteria decision-making framework for distributed generation projects investment considering the risk of electricity market trading,” J. Cleaner Prod. 416, 137837 (2023). https://doi.org/10.1016/j.jclepro.2023.137837 M. A. R. do Nascimento, L. de O. Rodrigues, E. C. dos Santos, E. E. B. Gomes, F. L. G. Dias, E. I. G. Velásques, and R. A. M. Carrillo, “Micro gas turbine engine: A review,” in Progress in Gas Turbine Performance (IntechOpen, 2013). https://doi.org/10.5772/54444 A. S. Kosoi, S. V. Monin, and M. V. Sinkevich, “Contemporary approaches to research supporting the development of microturbine power generation systems,” Vestn. Kontserna VKO “Almaz – Antei”, No. 1, 72–79 (2018). http://journal.almaz-antey.ru/jour/article/ view/48/48 Y. Li, Z. Ding, Y. Yu, and Y. Liu, “Mitigation effect of flywheel energy storage on the performance of marine gas turbine DC microgrid under high-power load mutation,” Energy Rep. 9, 1380–1396 (2023). https://doi.org/10.1016/j.egyr.2022.12.052 M. S. Ismail, M. Moghavvemi, and T. M. I. Mahlia, “Design of an optimized photovoltaic and microturbine hybrid power system for a remote small community: Case study of Palestine,” Energy Convers. Manage. 75, 271–281 (2013). https://doi.org/10.1016/j.enconman.2013.06.019 O. S. Popel’ and A. B. Tarasenko, “Modern kinds of electric energy storages and their application in independent and centralized power systems,” Therm. Eng. 58, 883–893 (2011). Alkaline and Lead-Acidic Rechargeable Batteries of Velikoluksk Accumulator Works “Impul’s”. https://akbluki.ru KGL-, KL-, KN-, KH-Type Alkaline Batteries. http://zait.ru T. Eguro, “Ni-cadmium batteries,” in Encyclopedia of Applied Electrochemistry, Ed. by G. Kreysa, K.-I. Ota, and R. F. Savinell (Springer, New York, 2014), pp. 1358–1363. https://doi.org/10.1007/978-1-4419-6996-5_147 GOST (State Standard) 15596-82. Chemical Current Generator Cells. Terms and Definitions. https://files. stroyinf.ru/Data/217/21710.pdf G. V. David, The Avionics Handbook (CRC, Boca Raton, Fla., 2001), Ch. 10. https://avocado82.files.wordpress.com/2011/06/avionics-handbook.pdf Scientific Background on the Nobel Prize in Chemistry 2019 — Lithium-Ion Batteries (The Royal Swedish Academy of Sciences, Stockholm, 2019). https://www.nobelprize.org/uploads/2019/10/advanced-chemistryprize2019-2.pdf J. Goodenough, “Rechargeable batteries: Challenges old and new,” J. Solid State Electrochem. 16, 2019–2029 (2012). https://doi.org/10.1007/s10008-012-1751-2 J. M. Tarascon, “Key challenges in future Li-battery research,” Philos. Trans. R. Soc. A 368, 3227–3241 (2010). https://doi.org/10.1098/rsta.2010.0112 Y.-H. Huang and J. B. Goodenough, “High-rate LiFePO4 lithium rechargeable battery promoted by electrochemically active polymers,” Chem. Mater. 20, 7237–7241 (2008). https://doi.org/10.1021/cm8012304 A. L. Lipson, B. J. Ross, J. L. Durham, D. Liu, M. Le Resche, T. T. Fister, L. Liu, and K. Kim, “Stabilizing NMC 811 Li-Ion battery cathode through a rapid coprecipitation process,” ACS Appl. Energy Mater. 4, 1972–1977 (2021). https://doi.org/10.1021/acsaem.0c03112 Y. Liu, P. Sun, S. Lin, H. Niu, and X. Huang, “Self-heating ignition of open-circuit cylindrical Li-ion battery pile: Towards fire-safe storage and transport,” J. Energy Storage 32, 101842 (2020). https://doi.org/10.1016/j.est.2020.101842 S. H. Beheshti, M. Javanbakht, H. Omidvar, M. S. Hosen, A. Hubin, J. V. Mierlo, and M. Berecibar, “Development, retainment, and assessment of the graphite-electrolyte interphase in Li-ion batteries regarding the functionality of SEI-forming additives,” Science 25, 1–23 (2022). https://doi.org/10.1016/j.isci.2022.103862 H.-J. Hong, S.-Y. Lee, S. Kwon, B.-S. Kim, S. Yoon, and I.-S. Park, “Preparation of lithium titanate nanoparticles assisted by an ion-exchange process and their electrochemical performance as anode materials for Li-ion batteries,” J. Alloys Compd. 886, 161296 (2021). https://doi.org/10.1016/j.jallcom.2021.161296 S. Sakong, J. Huang, M. Eikerling, and A. Groß, “The structure of the electric double layer: Atomistic versus continuum approaches,” Curr. Opin. Electrochem. 33, 100953 (2022). https://doi.org/10.1016/j.coelec.2022.100953 A. A. Fedotov, O. S. Popel, S. V. Kiseleva, and A. B. Tarasenko, “Limitations for lithium-ion batteries application in engine cold cranking,” J. Phys.: Conf. Ser. 1787, 012065 (2021). https://doi.org/10.1088/1742-6596/1787/1/012065 KGL Series Rechargeable Batteries. http://www.zait. ru/akkumuljatory/akkumuljatory_serii_kgl Alcaline Ni-Cd Battery for KGL375P Power Stations (KURS Ltd.). https://zaokurs.ru/katalog/akkumulyatornyie-batarei/staczionarnyie-akkumulyatoryi/shhelochnoj-nikel-kadmievyij-akkumulyator-dlya-elektrostanczij-kgl375p Batteries for Storage, Cleaning and Other Devices. https:// www.jsc-energiya.com/?ysclid=lk7ytz0ipo704660496 NETER Ltd. — Russian Manufacturer of Lithium Batteries. https://neter.pro Solutions based on Supercapacitors and Li-Ion Batteries. https://titanps.ru/?ysclid=lk7yxob03v640141765 Supercapacitors from “Ultracapacitors Feniks”. https://www.ultracapacitor.ru/catalog/superkondensatory-feniks/superkondensatory Products from TEEMP. https://teemp.ru/?ysclid= lk7yz73yrc111049302 Technology and Design of Supercapacitors from TEEMP. https://teemp.ru/tehnologiya R. R. Galimzyanov, S. V. Stakhanova, I. S. Krechetov, A. T. Kalashnik, M. V. Astakhov, A. V. Lisitsin, A. Yu. Rychagov, T. R. Galimzyanov, and F. S. Tabarov, “Electrolyte mixture based on acetonitrile and ethyl acetate for a wide temperature range performance of the supercapacitors,” J. Power Sources 495, 229442 (2021). https://doi.org/10.1016/j.jpowsour.2020.229442 Supercapacitors from SC Elekond. https://elecond.ru/production/super