Open Access Open Access  Restricted Access Subscription or Fee Access

Power System Improvement of Different Coordinated Electric Vehicles Integration Approaches with Superconducting Magnetic Energy Storage


(*) Corresponding author


Authors' affiliations


DOI: https://doi.org/10.15866/iree.v14i6.17315

Abstract


Nowadays, electric vehicles have a considerable effect on the electrical system, thus their analysis based on different electric vehicle integration approaches is necessary. This paper exhibits four case studies for electric vehicles with the grid to exhibit their influence on the electrical network and reduce power loss and voltage fluctuation. Furthermore, the growing load demand matters, management and support of active and reactive power, and load balancing are discussed. Fuzzy logic control is applied to estimate the process of the charging/discharging. Moreover, a controlled superconducting magnetic energy storage system is utilized for the power grid which integrates with electric vehicles to the level of load demand during on-peak load and fast charging. A coordinated control between electric vehicles and superconducting magnetic energy storage unit is applied to level the power required by electric vehicles and improve the power system performance. Electricity price is a common coordination signal for both electric vehicles and superconducting magnetic energy storage, which depends on fuzzy control. The simulation results implemented by the Matlab Simulink tool show the effectiveness of the coordination control technique and superconducting magnetic energy storage in minimizing power loss and voltage fluctuation. Besides that, it helps to alleviate the active power and reduce the reactive power provided by the grid.
Copyright © 2019 Praise Worthy Prize - All rights reserved.

Keywords


Electric Vehicles (EVs); Coordinated Control; Superconducting Magnetic Energy Storage (SMES); Power Loss and Voltage Control; Fuzzy Logic Controller (FLC)

Full Text:

PDF


References


Global EV Outlook 2018 Towards cross-modal electrification, International Energy Agency (IEA), 2018.
https://doi.org/10.1787/9789264302365-en

Simultaneous Observation of Hybrid States for Cyber-Physical Systems: A Case Study of Electric Vehicle Powertrain, IEEE Trans. Cybern., vol. 48, no. 8, pp. 2357–2367, Aug. 2018.
https://doi.org/10.1109/tcyb.2017.2738003

Y. Chen, A. Oudalov, and J. S. Wang, Integration of electric vehicle charging system into distribution network, in 8th International Conference on Power Electronics - ECCE Asia, 2011, pp. 593–598.
https://doi.org/10.1109/icpe.2011.5944615

J. de Hoog, T. Alpcan, M. Brazil, D. A. Thomas, and I. Mareels, Optimal Charging of Electric Vehicles Taking Distribution Network Constraints Into Account, IEEE Trans. Power Syst., vol. 30, no. 1, pp. 365–375, Jan. 2015.
https://doi.org/10.1109/tpwrs.2014.2318293

J. Hu, S. You, M. Lind, and J. Ostergaard, Coordinated Charging of Electric Vehicles for Congestion Prevention in the Distribution Grid, IEEE Trans. Smart Grid, vol. 5, no. 2, pp. 703–711, Mar. 2014.
https://doi.org/10.1109/tsg.2013.2279007

C. Jiang, R. Torquato, D. Salles, and W. Xu, Method to Assess the Power-Quality Impact of Plug-in Electric Vehicles, IEEE Trans. Power Deliv., vol. 29, no. 2, pp. 958–965, Apr. 2014.
https://doi.org/10.1109/tpwrd.2013.2283598

R.-C. Leou, C.-L. Su, and C.-N. Lu, Stochastic Analyses of Electric Vehicle Charging Impacts on Distribution Network, IEEE Trans. Power Syst., vol. 29, no. 3, pp. 1055–1063, May 2014.
https://doi.org/10.1109/tpwrs.2013.2291556

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, Appl. Energy, vol. 152, pp. 20–30, Aug. 2015.
https://doi.org/10.1016/j.apenergy.2015.04.092

L. Yao, Z. Damiran, and W. H. Lim, A fuzzy logic based charging scheme for electric vechicle parking station, in 2016 IEEE 16th International Conference on Environment and Electrical Engineering (EEEIC), 2016, pp. 1–6.
https://doi.org/10.1109/eeeic.2016.7555799

A. A. Eajal, M. F. Shaaban, E. F. El-Saadany, and K. Ponnambalam, “Fuzzy logic-based charging strategy for Electric Vehicles plugged into a smart grid,” in 2015 IEEE International Conference on Smart Energy Grid Engineering (SEGE), 2015, pp. 1–6.
https://doi.org/10.1109/sege.2015.7324606

M. Ghofrani, A. Arabali, and M. Ghayekhloo, Optimal charging/discharging of grid-enabled electric vehicles for predictability enhancement of PV generation, Electr. Power Syst. Res., vol. 117, pp. 134–142, Dec. 2014.
https://doi.org/10.1016/j.epsr.2014.08.007

M. F. Shaaban, M. Ismail, E. F. El-Saadany, and W. Zhuang, Real-Time PEV Charging/Discharging Coordination in Smart Distribution Systems, IEEE Trans. Smart Grid, vol. 5, no. 4, pp. 1797–1807, Jul. 2014.
https://doi.org/10.1109/tsg.2014.2311457

A. Zakariazadeh, S. Jadid, and P. Siano, Multi-objective scheduling of electric vehicles in smart distribution system, Energy Convers. Manag., vol. 79, pp. 43–53, Mar. 2014.
https://doi.org/10.1016/j.enconman.2013.11.042

Z. Song, H. Hofmann, J. Li, X. Han, and M. Ouyang, Optimization for a hybrid energy storage system in electric vehicles using dynamic programing approach, Appl. Energy, vol. 139, pp. 151–162, Feb. 2015.
https://doi.org/10.1016/j.apenergy.2014.11.020

Z. Song, X. Zhang, J. Li, H. Hofmann, M. Ouyang, and J. Du, Component sizing optimization of plug-in hybrid electric vehicles with the hybrid energy storage system, Energy, vol. 144, pp. 393–403, Feb. 2018.
https://doi.org/10.1016/j.energy.2017.12.009

Q. Zhang, W. Deng, and G. Li, Stochastic Control of Predictive Power Management for Battery/Supercapacitor Hybrid Energy Storage Systems of Electric Vehicles, IEEE Trans. Ind. Informatics, vol. 14, no. 7, pp. 3023–3030, Jul. 2018.
https://doi.org/10.1109/tii.2017.2766095

T. Dragicevic, S. Bo, E. Schaltz, and J. M. Guerrero, Flexible local load controller for fast electric vehicle charging station supplemented with flywheel energy storage system, in 2014 IEEE International Electric Vehicle Conference (IEVC), 2014, pp. 1–6.
https://doi.org/10.1109/ievc.2014.7056133

A novel design of hybrid energy storage system for electric vehicles, Chinese J. Electr. Eng., vol. 4, no. 1, pp. 45–51, Mar. 2018.
https://doi.org/10.23919/cjee.2018.8327370

L. Kouchachvili, W. Yaïci, and E. Entchev, Hybrid battery/supercapacitor energy storage system for the electric vehicles, J. Power Sources, vol. 374, pp. 237–248, Jan. 2018.
https://doi.org/10.1016/j.jpowsour.2017.11.040

Z. Song, H. Hofmann, J. Li, J. Hou, X. Han, and M. Ouyang, Energy management strategies comparison for electric vehicles with hybrid energy storage system, Appl. Energy, vol. 134, pp. 321–331, Dec. 2014.
https://doi.org/10.1016/j.apenergy.2014.08.035

Shuang Gao, K. T. Chau, Chunhua Liu, Diyun Wu, and Jiangui Li, SMES Control for Power Grid Integrating Renewable Generation and Electric Vehicles, IEEE Trans. Appl. Supercond., vol. 22, no. 3, pp. 5701804–5701804, Jun. 2012.
https://doi.org/10.1109/tasc.2011.2178012

M. A. Hannan, M. M. Hoque, A. Mohamed, and A. Ayob, Review of energy storage systems for electric vehicle applications: Issues and challenges, Renew. Sustain. Energy Rev., vol. 69, pp. 771–789, Mar. 2017.
https://doi.org/10.1016/j.rser.2016.11.171

M. H. Ali, Bin Wu, and R. A. Dougal, An Overview of SMES Applications in Power and Energy Systems, IEEE Trans. Sustain. Energy, vol. 1, no. 1, pp. 38–47, Apr. 2010.
https://doi.org/10.1109/tste.2010.2044901

Byung-Kwan Kang, Seung-Tak Kim, Sun-Ho Bae, and Jung-Wook Park, Effect of a SMES in Power Distribution Network With PV System and PBEVs, IEEE Trans. Appl. Supercond., vol. 23, no. 3, pp. 5700104–5700104, Jun. 2013.
https://doi.org/10.1109/tasc.2012.2230681

K. Choobdari Omran and A. Mosallanejad, SMES/battery hybrid energy storage system based on bidirectional Z-source inverter for electric vehicles, IET Electr. Syst. Transp., vol. 8, no. 4, pp. 215–220, Dec. 2018.
https://doi.org/10.1049/iet-est.2017.0100

J. Shi, Y. Liu, Y. Tang, and J. Deng, Application of a hybrid energy storage system in the fast charging station of electric vehicles, IET Gener. Transm. Distrib., vol. 10, no. 4, pp. 1092–1097, Mar. 2016.
https://doi.org/10.1049/iet-gtd.2015.0110

J. Li, M. Zhang, Q. Yang, Z. Zhang, and W. Yuan, SMES/Battery Hybrid Energy Storage System for Electric Buses, IEEE Trans. Appl. Supercond., vol. 26, no. 4, pp. 1–5, Jun. 2016.
https://doi.org/10.1109/tasc.2016.2527730

Y. Liu, Y. Tang, J. Shi, X. Shi, J. Deng, and K. Gong, Application of Small-Sized SMES in an EV Charging Station With DC Bus and PV System, IEEE Trans. Appl. Supercond., vol. 25, no. 3, pp. 1–6, Jun. 2015.
https://doi.org/10.1109/tasc.2014.2374174

Y. Q. Xing, J. X. Jin, Y. L. Wang, B. X. Du, and S. C. Wang, An Electric Vehicle Charging System Using an SMES Implanted Smart Grid, IEEE Trans. Appl. Supercond., vol. 26, no. 7, pp. 1–4, Oct. 2016.
https://doi.org/10.1109/tasc.2016.2602245

Charging a NISSAN Leaf (24kWh)|NewMotion. [Online].
Available:
https://newmotion.com/charging-a-nissan-leaf-24kwh [Accessed: 21-Mar-2019]

K. Qian, C. Zhou, M. Allan, and Y. Yuan, Modeling of Load Demand Due to EV Battery Charging in Distribution Systems, IEEE Trans. Power Syst., vol. 26, no. 2, pp. 802–810, May 2011.
https://doi.org/10.1109/tpwrs.2010.2057456

Y. Cao et al., An Optimized EV Charging Model Considering TOU Price and SOC Curve, IEEE Trans. Smart Grid, vol. 3, no. 1, pp. 388–393, Mar. 2012.
https://doi.org/10.1109/tsg.2011.2159630

Yanfang Yang, Bin Wei, Panpan Chen, Hongjie Zhang, Ming Qiu, and Dong Zhang, The Quench Protection System for Superconducting Magnetic Energy Storage, IEEE Trans. Appl. Supercond., vol. 23, no. 3, pp. 4700704–4700704, Jun. 2013.
https://doi.org/10.1109/tasc.2012.2233855

M. M. Aly, M. Abdel-Akher, S. M. Said, and T. Senjyu, A developed control strategy for mitigating wind power generation transients using superconducting magnetic energy storage with reactive power support, Int. J. Electr. Power Energy Syst., vol. 83, pp. 485–494, Dec. 2016.
https://doi.org/10.1016/j.ijepes.2016.04.037

L. A. Zadeh, Fuzzy sets, Inf. Control, vol. 8, no. 3, pp. 338–353, Jun. 1965.

J. Y. M. Cheung and A. S. Kamal, Fuzzy logic control of refrigerant flow, UKACC International Conference on Control '96 (Conf. Publ. No. 427), Exeter, UK, 1996, pp. 125-130 vol.1.
https://doi.org/10.1049/cp:19960538

L. Reznik, Fuzzy Controllers, Newnes, A division of Reed Educational and Professional Publishing ltd, 1997.

Jin Zhao and B. K. Bose, “Evaluation of membership functions for fuzzy logic controlled induction motor drive,” in IEEE 2002 28th Annual Conference of the Industrial Electronics Society. IECON 02, vol. 1, pp. 229–234.
https://doi.org/10.1109/iecon.2002.1187512

Hassoune, A., Khafallah, M., Mesbahi, A., Benaaouinate, L., ouragba, T., Control Strategies of a Smart Topology of EVs Charging Station Based Grid Tied RES-Battery, (2018) International Review of Electrical Engineering (IREE), 13 (5), pp. 385-396.
https://doi.org/10.15866/iree.v13i5.15520

Caballero, J., Chinchilla, J., Rosero Garcia, J., Performance Testing and Power Quality of DC Semi-Fast Chargers of Electric Vehicles (EVs) for Public Transportation: a Case Study, (2016) International Review of Electrical Engineering (IREE), 11 (6), pp. 579-585.
https://doi.org/10.15866/iree.v11i6.10258

Tellez, S., Villamil, W., Rosero Garcia, J., Electric Vehicle Charging Impacts by Increasing Demand and Varying Customer Charging Behaviors, (2016) International Review of Electrical Engineering (IREE), 11 (2), pp. 142-150.
https://doi.org/10.15866/iree.v11i2.8311

Chartsuk, N., Marungsri, B., Supervision Strategy to Mitigate the Effect of Electric Vehicles (EVs) Charging Load on Power Distribution System Operations, (2018) International Journal on Energy Conversion (IRECON), 6 (6), pp. 184-195.
https://doi.org/10.15866/irecon.v6i6.15986


Refbacks

  • There are currently no refbacks.



Please send any question about this web site to info@praiseworthyprize.com
Copyright © 2005-2024 Praise Worthy Prize