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References
Оглавление1. T. P. Lyon, M. Michelin, A. Jongejan, and T. Leahy, “Is “smart charging” policy for electric vehicles worthwhile?,” Energy Policy, vol. 41, pp. 259-268, 2012.
2. M. Van Der Kam, and W. van Sark, “Smart charging of electric vehicles with photovoltaic power and vehicle-to-grid technology in a microgrid; a case study,” Applied energy, vol. 152, pp. 20–30, 2015.
3. J. P. Lopes, P. M. R. Almeida, A. M. Silva, and F. J. Soares, “Smart charging strategies for electric vehicles: Enhancing grid performance and maximizing the use of variable renewable energy resources,” 2009.
4. I. Sharma, C. Canizares, and K. Bhattacharya, “Smart charging of PEVs penetrating into residential distribution systems,” IEEE Transactions on Smart Grid, vol. 5, no. 3, pp. 1196-1209, 2014.
5. M. G. Vaya, and G. Andersson, “Centralized and decentralized approaches to smart charging of plug-in vehicles.” pp. 1-8.
6. B. Sah, P. Kumar, R. Rayudu, S. K. Bose, and K. P. Inala, “Impact of sampling in the operation of vehicle to grid and its mitigation,” IEEE Transactions on Industrial Informatics, vol. 15, no. 7, pp. 3923-3933, 2018.
7. Q. Wang, X. Liu, J. Du, and F. Kong, “Smart charging for electric vehicles: A survey from the algorithmic perspective,” IEEE Communications Surveys & Tutorials, vol. 18, no. 2, pp. 1500-1517, 2016.
8. S. Han, S. Han, and K. Sezaki, “Development of an optimal vehicle-to-grid aggregator for frequency regulation,” IEEE Transactions on smart grid, vol. 1, no. 1, pp. 65-72, 2010.
9. H. Das, M. Rahman, S. Li, and C. Tan, “Electric vehicles standards, charging infrastructure, and impact on grid integration: A technological review,” Renewable and Sustainable Energy Reviews, vol. 120, pp. 109618, 2020.
10. J. García-Villalobos, I. Zamora, J. I. San Martín, F. J. Asensio, and V. Aperribay, “Plug-in electric vehicles in electric distribution networks: A review of smart charging approaches,” Renewable and Sustainable Energy Reviews, vol. 38, pp. 717-731, 2014.
11. E. Akhavan-Rezai, M. Shaaban, E. El-Saadany, and A. Zidan, “Uncoordinated charging impacts of electric vehicles on electric distribution grids: Normal and fast charging comparison.” pp. 1-7.
12. M. Muratori, “Impact of uncoordinated plug-in electric vehicle charging on residential power demand,” Nature Energy, vol. 3, no. 3, pp. 193-201, 2018.
13. R. A. Verzijlbergh, M. O. Grond, Z. Lukszo, J. G. Slootweg, and M. D. Ilic, “Network impacts and cost savings of controlled EV charging,” IEEE transactions on Smart Grid, vol. 3, no. 3, pp. 1203-1212, 2012.
14. R.-C. Leou, C.-L. Su, and C.-N. Lu, “Stochastic analyses of electric vehicle charging impacts on distribution network,” IEEE Transactions on Power Systems, vol. 29, no. 3, pp. 1055–1063, 2013.
15. M. Singh, P. Kumar, and I. Kar, “Implementation of vehicle to grid infrastructure using fuzzy logic controller,” IEEE Transactions on Smart Grid, vol. 3, no. 1, pp. 565-577, 2012.
16. S. Paudyal, O. Ceylan, B. P. Bhattarai, and K. S. Myers, “Optimal coordinated EV charging with reactive power support in constrained distribution grids.” pp. 1-5.
17. Y. Zhang, H. Yu, C. Huang, W. Zhao, and M. Luo, “Coordination of Electric Vehicles Charging to Maximize Economic Benefits.” pp. 508-517.
18. J. Hu, S. You, M. Lind, and J. Østergaard, “Coordinated charging of electric vehicles for congestion prevention in the distribution grid,” IEEE Transactions on Smart Grid, vol. 5, no. 2, pp. 703-711, 2013.
19. M. F. Shaaban, A. A. Eajal, and E. F. El-Saadany, “Coordinated charging of plug-in hybrid electric vehicles in smart hybrid AC/DC distribution systems,” Renewable Energy, vol. 82, pp. 92-99, 2015/10/01/, 2015.
20. B. Sah, P. Kumar, and S. K. Bose, “A Fuzzy Logic and Artificial Neural Network-Based Intelligent Controller for a Vehicle-to-Grid System,” IEEE Systems Journal, 2020.
21. A. S. Masoum, A. Abu-Siada, and S. Islam, “Impact of uncoordinated and coordinated charging of plug-in electric vehicles on substation transformer in smart grid with charging stations.” pp. 1-7.
22. A. Dubey, and S. Santoso, “Electric vehicle charging on residential distribution systems: Impacts and mitigations,” IEEE Access, vol. 3, pp. 1871-1893, 2015.
23. D. Oliveira, A. Z. De Souza, and L. Delboni, “Optimal plug-in hybrid electric vehicles recharge in distribution power systems,” Electric Power Systems Research, vol. 98, pp. 77–85, 2013.
24. S. Deilami, A. S. Masoum, P. S. Moses, and M. A. Masoum, “Real-time coordination of plug-in electric vehicle charging in smart grids to minimize power losses and improve voltage profile,” IEEE Transactions on Smart Grid, vol. 2, no. 3, pp. 456–467, 2011.
25. E. Sortomme, M. M. Hindi, S. J. MacPherson, and S. Venkata, “Coordinated charging of plug-in hybrid electric vehicles to minimize distribution system losses,” IEEE transactions on smart grid, vol. 2, no. 1, pp. 198–205, 2010.
26. Å. L. Sørensen, S. Jiang, B. N. Torsæter, and S. Völler, “Smart ev charging systems for zero emission neighbourhoods,” 2018.
27. J. J. A. Saldanha, E. M. Dos Santos, A. P. C. De Mello, and D. P. Bernardon, “Control strategies for smart charging and discharging of plug-in electric vehicles,” Smart Cities Technologies, vol. 1, 2016.
28. K. Valentine, W. G. Temple, and K. M. Zhang, “Intelligent electric vehicle charging: Rethinking the valley-fill,” Journal of Power Sources, vol. 196, no. 24, pp. 10717-10726, 2011.
29. A. Zakariazadeh, S. Jadid, and P. Siano, “Multi-objective scheduling of electric vehicles in smart distribution system,” Energy Conversion and Management, vol. 79, pp. 43-53, 2014.
30. J. P. Lopes, P. R. Almeida, and F. J. Soares, “Using vehicle-to-grid to maximize the integration of intermittent renewable energy resources in islanded electric grids.” pp. 290-295.
31. M. Tokudome, K. Tanaka, T. Senjyu, A. Yona, T. Funabashi, and C.-H. Kim, “Frequency and voltage control of small power systems by decentralized controllable loads.” pp. 666-671.
32. I. Outlook, “Smart Charging for Electric Vehicles,” Available online:/publications/2019/May/Innovation-Outlook-Smart-Charging (accessed on April 28th 2020), 2019.
33. A. Di Giorgio, F. Liberati, and S. Canale, “Electric vehicles charging control in a smart grid: A model predictive control approach,” Control Engineering Practice, vol. 22, pp. 147-162, 2014.
34. J. Kang, S. J. Duncan, and D. N. Mavris, “Real-time scheduling techniques for electric vehicle charging in support of frequency regulation,” Procedia Computer Science, vol. 16, pp. 767-775, 2013.
35. H. K. Nguyen, and J. B. Song, “Optimal charging and discharging for multiple PHEVs with demand side management in vehicle-to-building,” Journal of Communications and networks, vol. 14, no. 6, pp. 662-671, 2012.
36. A. Subramanian, M. Garcia, A. Dominguez-Garcia, D. Callaway, K. Poolla, and P. Varaiya, “Real-time scheduling of deferrable electric loads.” pp. 3643-3650.
37. K. Clement-Nyns, E. Haesen, and J. Driesen, “The impact of charging plug-in hybrid electric vehicles on a residential distribution grid,” IEEE Transactions on power systems, vol. 25, no. 1, pp. 371–380, 2009.
38. P. Richardson, D. Flynn, and A. Keane, “Local versus centralized charging strategies for electric vehicles in low voltage distribution systems,” IEEE Transactions on Smart Grid, vol. 3, no. 2, pp. 1020-1028, 2012.
39. D. Wu, D. C. Aliprantis, and L. Ying, “Load scheduling and dispatch for aggregators of plug-in electric vehicles,” IEEE Transactions on Smart Grid, vol. 3, no. 1, pp. 368-376, 2011.
40. C. Luo, Y.-F. Huang, and V. Gupta, “Stochastic dynamic pricing for EV charging stations with renewable integration and energy storage,” IEEE Transactions on Smart Grid, vol. 9, no. 2, pp. 1494-1505, 2017.
41. M. H. K. Tushar, A. W. Zeineddine, and C. Assi, “Demand-side management by regulating charging and discharging of the EV, ESS, and utilizing renewable energy,” IEEE Transactions on Industrial Informatics, vol. 14, no. 1, pp. 117-126, 2017.
42. Y. Yang, Q.-S. Jia, G. Deconinck, X. Guan, Z. Qiu, and Z. Hu, “Distributed coordination of EV charging with renewable energy in a microgrid of buildings,” IEEE Transactions on Smart Grid, vol. 9, no. 6, pp. 6253-6264, 2017.
43. X. Zhu, M. Xia, and H.-D. Chiang, “Coordinated sectional droop charging control for EV aggregator enhancing frequency stability of microgrid with high penetration of renewable energy sources,” Applied Energy, vol. 210, pp. 936-943, 2018.
44. G. Barone, A. Buonomano, F. Calise, C. Forzano, and A. Palombo, “Building to vehicle to building concept toward a novel zero energy paradigm: Modelling and case studies,” Renewable and Sustainable Energy Reviews, vol. 101, pp. 625-648, 2019.
45. J. García-Villalobos, I. Zamora, J. San Martín, I. Junquera, and P. Eguía, “Delivering Energy from PEV batteries: V2G, V2B and V2H approaches.” pp. 247-15.
46. A. Tchagang, and Y. Yoo, “V2B/V2G on Energy Cost and Battery Degradation under Different Driving Scenarios, Peak Shaving, and Frequency Regulations,” World Electric Vehicle Journal, vol. 11, no. 1, pp. 14, 2020.
47. Q. Huang, X. Wang, J. Fan, S. Qi, W. Zhang, and C. Zhu, “V2G Optimal Scheduling of Multiple EV Aggregator Based on TOU Electricity Price.” pp. 1-6.
48. C. Li, Y. Cao, Y. Kuang, and B. Zhou, “Influences of EVs on Power System by Improving the Microclimate,” Influences of Electric Vehicles on Power System and Key Technologies of Vehicle-to-Grid, pp. 1-23: Springer, 2016.
49. C. Guille, and G. Gross, “A conceptual framework for the vehicle-to-grid (V2G) implementation,” Energy policy, vol. 37, no. 11, pp. 4379-4390, 2009.
50. C. Battistelli, L. Baringo, and A. Conejo, “Optimal energy management of small electric energy systems including V2G facilities and renewable energy sources,” Electric Power Systems Research, vol. 92, pp. 50-59, 2012.
51. C. Pang, P. Dutta, and M. Kezunovic, “BEVs/PHEVs as dispersed energy storage for V2B uses in the smart grid,” IEEE Transactions on smart grid, vol. 3, no. 1, pp. 473–482, 2011.
52. S. Liu, X. Xie, and L. Yang, “Analysis, Modeling and Implementation of a Switching Bi-Directional Buck-Boost Converter Based on Electric Vehicle Hybrid Energy Storage for V2G System,” IEEE Access, vol. 8, pp. 65868-65879, 2020.
53. W. Choi, Y. Wu, D. Han, J. Gorman, P. C. Palavicino, W. Lee, and B. Sarlioglu, “Reviews on grid-connected inverter, utility-scaled battery energy storage system, and vehicle-to-grid application-challenges and opportunities.” pp. 203–210.
54. K. P. Inala, P. Kumar, and S. K. Bose, “Impact of communication systems on grid node voltage and operation of a vehicle-to-grid controller in a smartgrid scenario,” IET Power Electronics, vol. 12, no. 13, pp. 3499-3509, 2019.
55. W. Han, and Y. Xiao, “Privacy preservation for V2G networks in smart grid: A survey,” Computer Communications, vol. 91, pp. 17-28, 2016.
56. C.-s. Park, E. Lee, and S.-k. Park, “Link adaptation layer of HomePlug GreenPHY for V2G communication interface.” pp. 572-573.
57. J. Lee, E. Lee, and S. Park, “Coexisting V2G PLC between G3 and HomePlug GP using dual PHY.” pp. 620-621.
58. Y. Kabalci, “A survey on smart metering and smart grid communication,” Renewable and Sustainable Energy Reviews, vol. 57, pp. 302-318, 2016.
59. K. P. Inala, B. Sah, P. Kumar, and S. K. Bose, “Impact of V2G Communication on Grid Node Voltage at Charging Station in a Smart Grid Scenario,” IEEE Systems Journal, 2020.
60. S. I.-N. Delhi, “Fame-India Scheme—Putting E-Mobility on Road,” Auto Tech Review, vol. 4, no. 5, pp. 22-27, 2015.
61. A. Harikumar, and P. Thakur, “Assessing the Impact and Cost-Effectiveness of Electric Vehicle Subsidy in India,” Journal of Resources, Energy and Development, vol. 16, no. 2, pp. 55-66, 2019.
62. S. Küfeoğlu, D. Melchiorre, and K. Kotilainen, “Understanding tariff designs and consumer behaviour to employ electric vehicles for secondary purposes in the United Kingdom,” The Electricity Journal, vol. 32, no. 6, pp. 1-6, 2019.
63. D. K. Shetty, S. Shetty, L. R. Rodrigues, N. Naik, C. B. Maddodi, N. Malarout, and N. Sooriyaperakasam, “Barriers to widespread adoption of plug-in electric vehicles in emerging Asian markets: An analysis of consumer behavioral attitudes and perceptions,” Cogent Engineering, vol. 7, no. 1, pp. 1796198, 2020.
64. F. Liao, E. Molin, H. Timmermans, and B. van Wee, “Consumer preferences for business models in electric vehicle adoption,” Transport Policy, vol. 73, pp. 12-24, 2019.
65. C. Lu, F. Chang, K. Rong, Y. Shi, and X. Yu, “Deprecated in policy, abundant in market? The frugal innovation of Chinese low-speed EV industry,” International Journal of Production Economics, vol. 225, pp. 107583, 2020.
66. O. Frendo, J. Graf, N. Gaertner, and H. Stuckenschmidt, “Data-driven smart charging for heterogeneous electric vehicle fleets,” Energy and AI, pp. 100007, 2020.
67. H. ElHusseini, C. Assi, B. Moussa, R. Attallah, and A. Ghrayeb, “Blockchain, AI and Smart Grids: The Three Musketeers to a Decentralized EV Charging Infrastructure,” IEEE Internet of Things Magazine, vol. 3, no. 2, pp. 24-29, 2020.
68. J. M. Fuller, “Social and municipal influences on electric vehicle purchases,”
2019.
69. C. Lazaroiu, and M. Roscia, “New approach for Smart Community Grid through Blockchain and smart charging infrastructure of EVs.” pp. 337-341.
70. S. Park, S. Lee, S. Park, and S. Park, “AI-based physical and virtual platform with 5-layered architecture for sustainable smart energy city development,” Sustainability, vol. 11, no. 16, pp. 4479, 2019.
71. R. Niranjan, “Digitalization for Optimization: Smart Grid operations in Finland,” 2019.
72. I. G. Unda, P. Papadopoulos, S. Skarvelis-Kazakos, L. M. Cipcigan, N. Jenkins, and E. Zabala, “Management of electric vehicle battery charging in distribution networks with multi-agent systems,” Electric Power Systems Research, vol. 110, pp. 172-179, 2014.
73. M. Liu, P. Mcnamara, R. Shorten, and S. Mcloone, “Residential electrical vehicle charging strategies: the good, the bad and the ugly,” Journal of Modern Power Systems and Clean Energy, vol. 3, no. 2, pp. 190-202, 2015.
74. A. Schuller, “Charging coordination paradigms of electric vehicles,” Plug in Electric Vehicles in Smart Grids, pp. 1-21: Springer, 2015.
75. F. Ni, L. Yan, K. Wu, M. Shi, J. Zhou, and X. Chen, “Hierarchical Optimization of Electric Vehicle System Charging Plan Based on the Scheduling Priority,” Journal of Circuits, Systems and Computers, vol. 28, no. 13, pp. 1950221, 2019.
76. D. Wu, N. Radhakrishnan, and S. Huang, “A hierarchical charging control of plug-in electric vehicles with simple flexibility model,” Applied Energy, vol. 253, pp. 113490, 2019.
77. Z. Ma, “Decentralized Charging Coordination of Large-Population PEVs Under a Hierarchical Structure,” Decentralized Charging Coordination of Large-scale Plug-in Electric Vehicles in Power Systems, pp. 109-129: Springer,
2020.
78. N. I. Nimalsiri, C. P. Mediwaththe, E. L. Ratnam, M. Shaw, D. B. Smith, and S. K. Halgamuge, “A survey of algorithms for distributed charging control of electric vehicles in smart grid,” IEEE Transactions on Intelligent Transportation Systems, 2019.
79. O. Frendo, N. Gaertner, and H. Stuckenschmidt, “Real-time smart charging based on precomputed schedules,” IEEE Transactions on Smart Grid, vol. 10, no. 6, pp. 6921-6932, 2019.
80. B. Feng, Q. Ye, and B. J. Collins, “A dynamic model of electric vehicle adoption: The role of social commerce in new transportation,” Information & Management, vol. 56, no. 2, pp. 196-212, 2019.
81. W. Li, Z. Lin, H. Zhou, and G. Yan, “Multi-objective optimization for cyber-physical-social systems: A case study of electric vehicles charging and discharging,” IEEE Access, vol. 7, pp. 76754-76767, 2019.
82. L. Geng, Z. Lu, L. He, J. Zhang, X. Li, and X. Guo, “Smart charging management system for electric vehicles in coupled transportation and power distribution systems,” Energy, vol. 189, pp. 116275, 2019.
1 *Corresponding author: bikash.2015@iitg.ac.in