Open Access
Issue
E3S Web Conf.
Volume 363, 2022
XV International Scientific Conference on Precision Agriculture and Agricultural Machinery Industry “State and Prospects for the Development of Agribusiness - INTERAGROMASH 2022”
Article Number 01057
Number of page(s) 12
Section Sustainable Mobility and Logistics
DOI https://doi.org/10.1051/e3sconf/202236301057
Published online 14 December 2022
  1. M. El-Samanoudy, A.A.E. Ghorab, Sh.Z. Youssef, Effect of same design parameters an the perfarmance of a Giramill vertical axis wind turbine. Ain Shams Engineering Journal, l, 85–95 (2010) [CrossRef] [Google Scholar]
  2. K. Pope, I. Dincer, G.F. Naterer, Energy and exergy efficiency camparisan of harizantal and vertical axis wind turbines. Renewable Energy, 35(9), 2102–2113 (2010) [CrossRef] [Google Scholar]
  3. A. Shires, Design aptimisatian of an affshare vertical axis wind turbine. Energy, l66(ENl), 7–18 (2013) [Google Scholar]
  4. P. Gulve, Sh. Bh. Barve, Design and canstructian of vertical axis wind turbine. International Journal of Mechanical Engineering and Technology (IJMET), 5(10), 148–155 (2014) [Google Scholar]
  5. Kung-Yen Lee, Shao-Hua Tsao, Chieh-Wen Tzeng, Huei-Jeng Lin, /nfluence of the vertical wind and wind directian an the pawer autput of a small vertical-axis wind turbine installed an the rooftop of a building. Applied Energy, 209(C), 383–391 (2018) [CrossRef] [Google Scholar]
  6. W. Tjiu, T. Marnoto, M. Sohif, M.H. Ruslan, Darrieus vertical axis wind turbine far pawer generatian I: Assessment of Darrieus VAWT canfiguratians. Renewable Energy, 75, 50–67 (2015) [CrossRef] [Google Scholar]
  7. W. Tjiu, T. Marnoto, M. Sohif, M.H. Ruslan, Darrieus vertical axis wind turbine far pawer generatian II: Challenges in HAWT and the appartunity of multi-megawatt Darrieus VAWT develapment. Renewable Energy, 75, 560–571 (2015) [CrossRef] [Google Scholar]
  8. J. Xin, Zh. Gaoyuan, G. KeJun, Ju Wenbin, Darrieus vertical axis wind turbine: Basic research methads. Renewable and Sustainable Energy Reviews, 42, 212–225 (2015) [CrossRef] [Google Scholar]
  9. M. Shaheen, Sh. Abdallah, Develapment of efficient vertical axis wind turbine clustered farms. Renewable and Sustainable Energy Reviews, 63, 237–244 (2016) [CrossRef] [Google Scholar]
  10. D. Mohamed, A. Zeroual, R. Rabehi, N. Allam, Wind energy systems: Analysis of the self-starting physics of vertical axis wind turbine. Renewable and Sustainable Energy Reviews, 81(1), 1602–1610 (2017) [Google Scholar]
  11. C.M. Vivek, P. Gopikrishnan, R. Murugesh, R. Raja Mohamed, A review an vertical and harizantal axis wind turbine. International Research Journal of Engineering and Technology (IRJET), 04(04), 247–250 (2017) [Google Scholar]
  12. R. Dommeti, A. Kathi, M. Pasumarthi, A Design far High-Tarque, Law-Speed Vertical Axis Wind Turbine. In.: Advances in Smart Grid and Renewable Energy, S. SenGupta et al. (eds.). Springer Nature Singapore Pte. Ltd., 203–213 (2018) [Google Scholar]
  13. R. Kumar, K. Raahemifar, A.S. Fung, A critical review of vertical axis wind turbines far urban applicatians. Renewable and Sustainable Energy Reviews, 89(C), 281–291 (2018) [CrossRef] [Google Scholar]
  14. B. Govind, Increasing the aperatianal capability of a harizantal axis wind turbine by its integratian with a vertical axis wind turbine. Applied Energy, 199, 479–494 (2017) [CrossRef] [Google Scholar]
  15. S.R. Shah, R. Kumar, K. Raahemifar, A.S. Fung, Design, madeling and ecanamic perfarmance of a vertical axis wind turbine. Energy Reports, 4, 619–623 (2018) [CrossRef] [Google Scholar]
  16. Mahdi Moghimi, Hadi Motawej, Develaped DMST madel far perfarmance analysis and parametric evaluatian of Garlav vertical axis wind turbines. Sustainable Energy Technologies and Assessments, 37, 100616 (2020) [CrossRef] [Google Scholar]
  17. B. Hand, A. Cashman, A review an the histarical develapment of the lift-type vertical axis wind turbine: Fram anshare ta affshare flaating applicatian. Sustainable Energy Technologies and Assessments, 38, 100646 (2020) [CrossRef] [Google Scholar]
  18. A.S. Pustovoitov, M.A. Chernov, D.O. Pavlov, L.O. Zemlyansky, N.V. Alexandrov, Overview of the different types of wind turbines in use araund the warld. Eurasian Scientific Association, 9-2(67), 124–127 (2020) [Google Scholar]
  19. E.V. Solomin, Camparative characteristics of vertical-axis wind turbines. International Scientific Journal for Alternative Energy and Ecology, 1(81), 48–53 (2010) [Google Scholar]
  20. F.D. Bayramov, N.S. Galimov, V.A. Ivanov, The ways ta increas efficiency ratar-type windmills with vertical axis of ratatian in the megalapalis. Scientific and Technical Volga region Bulletin, 2, 99–102 (2014) [Google Scholar]
  21. A.A. Bubenchikov, R.A. Daichman, E.Yu. Artamonova, T.V. Bubenchikova, Calculatian of the prafitability of an autanamaus pawer supply system based an a wind pawer plant with a Darrieus ratar. Russia is young: advanced technologies go to industry, 1, 149–154 (2015) [Google Scholar]
  22. A.V. Nikitin, /ncreasing the pawer of the wind flaw with a wind generatar with a diffuser amplifier. Agricultural innovations, 3(8), 198–202 (2014) [Google Scholar]
  23. A.V. Serebryakov, O.V. Kryukov, Intelligent wind power plant for autonomous power supply systems (Nizhniy Novgorod, Nizhniy Novgorod State Technical University n.a. R.E. Alekseev, 2014) [Google Scholar]
  24. F.M. Mitenkov, A.S. Chistov, V.F. Ovchinnikov, M. Ya. Nikolaev, E.V. Kiryushina, V.N. Litvinov, E.V. Faleeva, O.G. Savikhin, Electramagnetic suspensian in vertical axial wind-driven generatars. Problems of Mechanical Engineering and Machine Reliability, 3, 3–9 (2015) [Google Scholar]
  25. E.V. Solomin, E.A. Sirotkin, E E. Solomin, The results of testing and aperatian of vertical axis wind turbines. PNRPU Bulletin. Electrotechnics, Informational Technologies, Control Systems, 15, 70–83 (2015) [Google Scholar]
  26. D.V. Korobatov, S.V. Kozlov, E.A. Sirotkin, Histaric and ecanamic analysis of wind turbines and cantral systems. International Scientific Journal Alternative Energy and Ecology, 15-18, 54–66 (2016) [CrossRef] [Google Scholar]
  27. A.A. Bubenchikov, A.E. Belodedov, I.S. Bulychev, A.O. Shepelev, The study of aeradynamics and pawer characteristics of Savanius ratar. International research journal, 12-3(54), 28–34 (2016) [Google Scholar]
  28. V.A. Kostyukov, M. Yu. Medvedev, A.M. Mayevsky, N.K. Poluyanovich, V.V. Savchenko, Study on advanced aerogenerator with <rotor-in-socket= assembly type. Vestnik of Don State Technical University. Ser. Machine Building and Machine Science, 1(88), 85–91 (2017) [Google Scholar]
  29. B.P. Khoziainov, The ways ta achieve leadership in wind energy. International Scientific Journal for Alternative Energy and Ecology, 22-24(270–272), 59–67 (2018) [CrossRef] [Google Scholar]
  30. V.A. Galkovsky, M. Sh. Khabibullayeva, A. Kh. Saforzoda, Calculatian of indicatars of energy efficiency of wind-driven electric plants of variaus canstructian. Energy saving and water treatment, 5(115), 51–55 (2018) [Google Scholar]
  31. S.N. Chizhma, S.V. Molchanov, A.I. Zakharov, Criteria far chaasing the type of wind turbines far mabile wind-salar pawer plants. Bulletin of Baltic Federal University named after I. Kant. Series: Physical-Mathematical and Technical Sciences, 1, 53–62 (2018) [Google Scholar]
  32. M.V. Deremov, N.V. Rudenko, V.V. Yershov, G.Z. Makhauri, Analysis of the possibility of using wind power plants far power supply of autonomous communication facilities of the Far North. Proceedings of the North Caucasus Branch of the Moscow Technical University of Communications and Informatics, 1, 295–301 (2019) [Google Scholar]
  33. N.D. Shishkin, R.A. Ilyin, D.I. Atdaev, The Use of Environmentally Friendly Vertical- Axis Wind Power Plants far Nature Reserves and National Parks in Southern Russia. Ecology and Industry of Russia, vol. 23, 11, 43–49 (2019) [CrossRef] [Google Scholar]
  34. N.D. Shishkin, I.S. Terentyev, Screw-shaped sucker rod pumping units driven by vertical axis wind turbine for oil extraction. Vestnik of Astrakhan State Technical University, 2(62), 11–16 (2016) [Google Scholar]
  35. N.D. Shishkin, R.A. Ilyin, Experimental study of parameters of vertical-axial wind- pawer plants far prapeller drives an small ships. Vestnik of Astrakhan State Technical University, 2, 93–100 (2019) [Google Scholar]
  36. Ch. Wilson, A. Grubler, K.S. Gallagher, G.F. Nemet, Marginalizatian of end-use technalagies in energy innavatian far climate pratectian. Nature climate change, 2, 780–788 (2012) [CrossRef] [Google Scholar]
  37. Å. Lindman, P. Söderholm, Wind energy and green ecanamy in Eurape: Measuring palicy-induced innovation using patent data. Applied Energy, 179(C), 1351–1359 (2016) [CrossRef] [Google Scholar]
  38. M.Van Geenhuizen, R. Nejabat, Municipalities’ Policy on Innovation and Market introduction in Sustainable Energy: A Facus an Lacal Yaung Technalagy Firms.Introduction Energies, 14(4), 1094 (2021) [CrossRef] [Google Scholar]
  39. W.E. Kilbourne, Green Marketing: A Thearetical Perspective. Journal of Marketing Management, l4(6), 641–655 (1998) [CrossRef] [Google Scholar]
  40. Dan Wang, Member IEEE, Liu Liu, Hongjie Jia, Member IEEE, Weiliang Wang, Yunqiang Zhi, Zhengji Meng, and Bingyu Zhou, Review of Key Problems Related to Integrated Energy Distribution Systems., CSEE JOURNAL OF POWER AND ENERGY SYSTEMS, VOL. 4, NO. 2, JUNE 2018 DOI:10.17775/CSEEJPES.2018.00570 [Google Scholar]
  41. Abhishek Kumar, Nand K. Meena, Arvind R. Singh, Yan Deng, Xiangning He, R.C. Bansal, Praveen Kumar, Strategic integration of battery energy storage systems with the provision of distributed ancillary services in active distribution systems,, Applied Energy 253 (2019) 113503, doi.org/l0.l016/j.apenergy.2019.ll3503 [Google Scholar]
  42. Farihan Mohamad, Jiashen Teh, Ching-Ming Lai and Liang-Rui Chen, Development of Energy Storage Systems for Power Network Reliability: A Review,, Energies 2018, 11, 2278; doi:10.3390/en11092278 [CrossRef] [Google Scholar]
  43. Omar J. Guerra, Jiazi Zhang, Joshua Eichman, Paul Denholm, Jennifer Kurtz, and Bri- Mathias Hodge, The Value of Seasonal Energy Storage Technologies for the Integration of Wind and Solar Power,, Energy & Environmental Science, 2020, DOI:10.1039/D0EE00771D [Google Scholar]
  44. Felix Keck, Manfred Lenzen, Anthony Vassallo, Mengyu Li, The impact of battery energy storage for renewable energy power grids in Australia,, Energy 173 (2019) 647e657, doi.org/l0.1016/j.energy.2019.02.053 [Google Scholar]

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