Yıl: 2021 Cilt: 29 Sayı: 3 Sayfa Aralığı: 1720 - 1735 Metin Dili: İngilizce DOI: 10.3906/elk-2006-149 İndeks Tarihi: 23-06-2022

Impact of hybrid power generation on voltage, losses, and electricity cost in distribution networks

Öz:
Energy and its capacity has emerged as one of the biggest distribution challenges all over the world. The existing grid becomes insufficient along with the expansion of the consumption. Therefore, the number of distributed generation (DG) in distribution networks increases and it allows us to sell back the extra energy. However, the efficiency of energy must be maintained into optimal values from the grid to the end-users. In spite of a lot of advantages of DG units, there are some disadvantages like fluctuations in voltage, increments of power losses, wrong protection coordination, harmonic and energy quality issues etc.. If the location, capacity, control mode, and type of DG resources cannot be designed optimally or the environment impacts such as wind speed and irradiation level cannot be considered before the integration in distribution networks, the integration results may lead to especially inefficiency of energy in terms of the voltage profile and the power losses. It is aimed to reduce the daily cost of an industrial area as well as improving the voltage profile and reducing the power losses by integrating DG units considering convenient location and dynamic price values. In this study, the impact of hybrid distributed power resources on voltage improvement, power losses, and electricity cost of the IEEE 13-bus test system are examined using Electrical Transient Analyzer Program software. In the simulation, the photovoltaic system and type 3 wind turbine generator are designed as 500 kW and integrated at bus 671 and bus 675 with four cases. Finally, the results obtained for voltage profiles and power losses of the entire system and total electricity cost of the industrial area are presented as comparative charts.
Anahtar Kelime:

Belge Türü: Makale Makale Türü: Araştırma Makalesi Erişim Türü: Erişime Açık
  • [1] Ackermann T, Andresson G, Söder L. Distributed generation: a definition. Electric Power Systems Research 2001; 57 (3): 195-204. doi: 10.1016/S0378-7796(01)00101-8
  • [2] ”IEEE Standard for Interconnection and Interoperability of Distributed Energy Resources with Associated Electric Power Systems Interfaces,” in IEEE Std 1547-2018 (Revision of IEEE Std 1547-2003) 2018: 1-138. doi: 10.1109/IEEESTD.2018.8332112
  • [3] Vaziri M, Vadhva S, Oneal T, Johnson M. Distributed generation issues and standards. In: 2011 IEEE International Conference on Information Reuse & Integration; Las Vegas, NV, USA; 2011. pp. 439-443.
  • [4] Chowdhury S, Chowdhury SP, Crossley P. Microgrids and Active Distribution Networks. London, UK: IET Digital Library, 2009.
  • [5] Afifi SN, Darwish MK. Impact of PV/wind/diesel hybrid system on the distribution networks-fault currents. In: International Conference on Renewable Energies and Power Quality; Madrid, Spain; 2016. pp. 850-854.
  • [6] Nuroglu FM, Arsoy AB. Voltage profile and short circuit analysis in distribution systems with DG. In: 2008 IEEE Canada Electric Power Conference; Vancouver, BC, Canada; 2008. pp. 1-5.
  • [7] Soni CJ, Gandhi PR, Takalkar SM. Design and analysis of 11 KV distribution system using ETAP software. In: International Conference on Computation of Power, Energy, Information and Communication (ICCPEIC); Chennai, India; 2015. pp. 0451-0456.
  • [8] Sailaja ChVSS, Prasad PVN. Determination of optimal distributed generation size for losses, protection coordination and reliability evaluation using ETAP. In: 2016 Biennial International Conference on Power and Energy Systems: Towards Sustainable Energy (PESTSE); Bangalore, India; 2016. pp. 1-6.
  • [9] Jiang F, Zhang Z, Cao T, Hu B, Piao Z. Impact of distributed generation on voltage profile and losses of distribution systems. In: Proceedings of the 32nd Chinese Control Conference; Xi’an; 2013. pp. 8587-8591.
  • [10] Jones GW, Chowdhury BH. Distribution system operation and planning in the presence of distributed generation technology. In: 2008 IEEE/PES Transmission and Distribution Conference and Exposition; Chicago, IL, USA; 2008. pp. 1-8.
  • [11] Ates Y, Uzunoglu M, Karakas A, Boynuegri AR, Nadar A et al. Implementation of adaptive relay coordination in distribution systems including distributed generation. Journal of Cleaner Production 2016; 112 (4): 2697-2705. doi: 10.1016/j.jclepro.2015.10.066
  • [12] Khan ZW, Khan S. Analyzing the impacts of Distributed Generation on power losses and voltage profile. In: 2015 International Conference on Emerging Technologies (ICET); Peshawar, Pakistan; 2015. pp. 1-4.
  • [13] Teleke S, Jahanbakhsh F, Katiraei F, Agüero JR. Analysis of interconnection of photovoltaic distributed generation. In: 2011 IEEE Industry Applications Society Annual Meeting; Orlando, FL, USA; 2011. pp. 1-6.
  • [14] Turan MT, Ates Y, Erdinc O, Gokalp E, Catalão JPS. Effect of electric vehicle parking lots equipped with roof mounted photovoltaic panels on the distribution network. International Journal of Electrical Power & Energy Systems 2019; 109: 283-289. doi: 10.1016/j.ijepes.2019.02.014
  • [15] Shi X, Bazzi AM. Solar photovoltaic power electronic systems: Design for reliability approach. In: 2015 17th European Conference on Power Electronics and Applications (EPE’15 ECCE-Europe); Geneva, Switzerland; 2015. pp. 1-8.
  • [16] Afifi SN, Wang H, Taylor GA, Irving MR. Impact of DFIG wind turbines on short circuit levels in distribution networks using ETAP. In: 2013 48th International Universities’ Power Engineering Conference (UPEC); Dublin, Ireland; 2013. pp. 1-4.
  • [17] Khan ZW, Khan S. Analyzing the impacts of distributed generation on power losses and voltage profile. In: 2015 International Conference on Emerging Technologies (ICET); Peshawar, Pakistan; 2015. pp. 1-4.
  • [18] Oliveira RV, Zamadei JA, Hossi CH. Impact of distributed synchronous and doubly-fed induction generators on small-signal stability of a distribution network. In: 2011 IEEE Power and Energy Society General Meeting; Detroit, MI, USA, USA; 2011. pp. 1-8.
  • [19] Xu L, Cartwright P. Direct active and reactive power control of DFIG for wind energy generation. IEEE Transactions on Energy Conversion 2006; 21 (3): 750-758. doi: 10.1109/TEC.2006.875472
  • [20] Alnager MAA. Wind turbine and diesel generator, hybrid control system. BSc, University of Khartoum, Sudan, 2012.
  • [21] Servansing AA, Pahlevaninezhad M, Jain PK. A review of hybrid distributed generation systems. In: Intelec 2012; Scottsdale, AZ, USA; 2012. pp. 1-5.
  • [22] Afifi SN, Darwish MK. Impact of hybrid renewable energy systems on short circuit levels in distribution networks. In: 2014 49th International Universities Power Engineering Conference (UPEC); Cluj-Napoca, Romania; 2014. pp. 1-5.
  • [23] Renani YK, Abyaneh HA, Sadeghi SHH, Dezaki HH, Nafisi H et al. Effect of the PV/FC hybrid power generation system on total line loss in distribution network. In: 2010 IEEE International Conference on Power and Energy; Kuala Lumpur, Malaysia; 2010. pp. 89-94.
  • [24] Cui T, Shen Y, Liang L, Zhang B, Guo H et al. Real-time voltage regulation of distributed power grids with wind power integration. In: 2018 International Conference on Power System Technology (POWERCON); Guangzhou, China; 2018. pp. 2102-2107.
  • [25] Ruiz‐Rodriguez FJ, Hernández JC, Jurado F. Voltage behaviour in radial distribution systems under the uncertainties of photovoltaic systems and electric vehicle charging loads. International Transactions on Electrical Energy Systems 2018; 28 (2): e2490. doi: 10.1002/etep.2490
  • [26] Kumar DS, Savier JS. Impact analysis of distributed generation integration on distribution network considering smart grid scenario. In: 2017 IEEE Region 10 Symposium (TENSYMP); Cochin, India; 2017. pp. 1-5.
  • [27] Zhang J, Ma Q, Xia S, Huan G. Research on the power quality control of distributed photovoltaic power. In: 2019 IEEE International Conference on Energy Internet (ICEI); Nanjing, China; 2019. pp. 461-465.
  • [28] Ruiz‐Rodriguez FJ, Hernández JC, Jurado F. Technical impact of photovoltaic-distributed generation on radial distribution systems: Stochastic simulations for a feeder in Spain. International Journal of Electrical Power & Energy Systems 2013; 50: 25-32. doi: 10.1016/j.ijepes.2013.02.010
  • [29] Lai J, Lu X, Wang F, Dehghanian P, Tang R. Broadcast gossip algorithms for distributed peer-to-peer control in AC microgrids. IEEE Transactions on Industry Applications 2019; 55 (3): 2241-2251. doi: 10.1109/TIA.2019.2898367
  • [30] Kesici M, Yapıcı R, Güneş D, Alboyacı B, Kurtoğlu Ş. Distributed generation control to solve voltage regulation problem in distribution networks: a real case study in Turkey. In: 2018 6th International Istanbul Smart Grids and Cities Congress and Fair (ICSG); Istanbul, Turkey; 2018. pp. 183-187.
  • [31] Dulau LI, Abrudean M, Bica D. Optimal location of a distributed generator for power losses improvement. Procedia Technology 2016; 22: 734-739. doi: 10.1016/j.protcy.2016.01.032
  • [32] Davda AT, Parekh BR. System impact analysis of renewable distributed generation on an existing radial distribution network. In: 2012 IEEE Electrical Power and Energy Conference; London, ON, Canada; 2012. pp. 128-132.
  • [33] Liu H, Li J, Ge S, He X, Li F et al. Distributed day-ahead peer-to-peer trading for multi-microgrid systems in active distribution networks. IEEE Access 2020; 8: 66961-66976. doi:10.1109/ACCESS.2020.2983645
  • [34] Ghanbari N, Mokhtari H, Bhattacharya S. Optimal distributed generation allocation and sizing for minimizing losses and cost function. In: 2018 IEEE Industry Applications Society Annual Meeting (IAS); Portland, OR, USA; 2018. pp. 1-6.
  • [35] Mahmoud K, Yorino N, Ahmed A. Optimal distributed generation allocation in distribution systems for loss minimization. IEEE Transactions on Power Systems 2016; 31 (2): 960-969. doi: 10.1109/TPWRS.2015.2418333
  • [36] Tutkun N, Can Ö, Şan ES. Daily cost minimization for an off-grid renewable microhybrid system installed to a residential home. In: 2015 International Conference on Renewable Energy Research and Applications (ICRERA); Palermo, Italy; 2015. pp. 750-754.
  • [37] Bonthu RK, Pham H, Aguilera RP, Ha QP. Minimization of building energy cost by optimally managing pv and battery energy storage systems. In: 2017 20th International Conference on Electrical Machines and Systems (ICEMS); Sydney, NSW, Australia; 2017. pp. 1-6.
  • [38] Narimani MR, Asghari B, Sharma R. Energy storage control methods for demand charge reduction and pv utilization ımprovement. In: 2017 IEEE PES Asia-Pacific Power and Energy Engineering Conference (APPEEC); Bangalore, India; 2017. pp. 1-5.
  • [39] Arabul FK, Arabul AY, Kumru CF, Boynuegri AR. Providing energy management of a fuel cell–battery–wind turbine–solar panel hybrid off grid smart home system. International Journal of Hydrogen Energy 2017; 42 (43): 26906-26913. doi: 10.1016/j.ijhydene.2017.02.204
  • [40] Hernández JC, Sanchez-Sutil F, Munoz‐Rodriguez FJ, Baier CR. Optimal sizing and management strategy for PV household-prosumers with self-consumption/sufficiency enhancement and provision of frequency containment reserve. Applied Energy 2020; 277: 115529. doi: 10.1016/j.apenergy.2020.115529
  • [41] Wu D, Li G, Javadi M, Malyscheff AM, Hong M et al. Assessing ımpact of renewable energy ıntegration on system strength using site-dependent short circuit ratio. IEEE Transactions on Sustainable Energy 2018; 9 (3): 1072-1080. doi: 10.1109/TSTE.2017.2764871
  • [42] Kim YS, Kim ES, Moon SI. Frequency and voltage control strategy of standalone microgrids with high penetration of ıntermittent renewable generation systems. IEEE Transactions on Power Systems 2016; 31 (1): 718-728. doi: 10.1109/TPWRS.2015.2407392
  • [43] Liu Z, Wu Q, Shahidehpour M, Li C, Huang S et al. Transactive real-time electric vehicle charging management for commercial buildings with PV on-site generation. IEEE Transactions on Smart Grid 2019; 10 (5): 4939-4950. doi: 10.1109/TSG.2018.2871171
  • [44] Singh B, Verma A, Chandra A, Al-Haddad K. Implementation of solar pv-battery and diesel generator based electric vehicle charging station. IEEE Transactions on Industry Applications 2020; 56 (4): 4007-4016. doi: 10.1109/TIA.2020.2989680
  • [45] Tsui KM, Chan SC. Demand response optimization for smart home scheduling under real-time pricing. IEEE Transactions on Smart Grid 2012; 3 (4): 1812-1821. doi: 10.1109/TSG.2012.2218835
APA ates y, Gökçek T, Arabul A (2021). Impact of hybrid power generation on voltage, losses, and electricity cost in distribution networks . , 1720 - 1735. 10.3906/elk-2006-149
Chicago ates yavuz,Gökçek Tayfur,Arabul Ahmet Yigit Impact of hybrid power generation on voltage, losses, and electricity cost in distribution networks . (2021): 1720 - 1735. 10.3906/elk-2006-149
MLA ates yavuz,Gökçek Tayfur,Arabul Ahmet Yigit Impact of hybrid power generation on voltage, losses, and electricity cost in distribution networks . , 2021, ss.1720 - 1735. 10.3906/elk-2006-149
AMA ates y,Gökçek T,Arabul A Impact of hybrid power generation on voltage, losses, and electricity cost in distribution networks . . 2021; 1720 - 1735. 10.3906/elk-2006-149
Vancouver ates y,Gökçek T,Arabul A Impact of hybrid power generation on voltage, losses, and electricity cost in distribution networks . . 2021; 1720 - 1735. 10.3906/elk-2006-149
IEEE ates y,Gökçek T,Arabul A "Impact of hybrid power generation on voltage, losses, and electricity cost in distribution networks ." , ss.1720 - 1735, 2021. 10.3906/elk-2006-149
ISNAD ates, yavuz vd. "Impact of hybrid power generation on voltage, losses, and electricity cost in distribution networks ". (2021), 1720-1735. https://doi.org/10.3906/elk-2006-149
APA ates y, Gökçek T, Arabul A (2021). Impact of hybrid power generation on voltage, losses, and electricity cost in distribution networks . Turkish Journal of Electrical Engineering and Computer Sciences, 29(3), 1720 - 1735. 10.3906/elk-2006-149
Chicago ates yavuz,Gökçek Tayfur,Arabul Ahmet Yigit Impact of hybrid power generation on voltage, losses, and electricity cost in distribution networks . Turkish Journal of Electrical Engineering and Computer Sciences 29, no.3 (2021): 1720 - 1735. 10.3906/elk-2006-149
MLA ates yavuz,Gökçek Tayfur,Arabul Ahmet Yigit Impact of hybrid power generation on voltage, losses, and electricity cost in distribution networks . Turkish Journal of Electrical Engineering and Computer Sciences, vol.29, no.3, 2021, ss.1720 - 1735. 10.3906/elk-2006-149
AMA ates y,Gökçek T,Arabul A Impact of hybrid power generation on voltage, losses, and electricity cost in distribution networks . Turkish Journal of Electrical Engineering and Computer Sciences. 2021; 29(3): 1720 - 1735. 10.3906/elk-2006-149
Vancouver ates y,Gökçek T,Arabul A Impact of hybrid power generation on voltage, losses, and electricity cost in distribution networks . Turkish Journal of Electrical Engineering and Computer Sciences. 2021; 29(3): 1720 - 1735. 10.3906/elk-2006-149
IEEE ates y,Gökçek T,Arabul A "Impact of hybrid power generation on voltage, losses, and electricity cost in distribution networks ." Turkish Journal of Electrical Engineering and Computer Sciences, 29, ss.1720 - 1735, 2021. 10.3906/elk-2006-149
ISNAD ates, yavuz vd. "Impact of hybrid power generation on voltage, losses, and electricity cost in distribution networks ". Turkish Journal of Electrical Engineering and Computer Sciences 29/3 (2021), 1720-1735. https://doi.org/10.3906/elk-2006-149