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Simultaneous sitting PVU and DSTATCOM in distribution grid considering the effect of geographical condition

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Warianty tytułu
Języki publikacji
EN
Abstrakty
EN
This paper proposes a model to allocate photovoltaic unit (PVU) and distribution static compensator (DSTATCOM) that incorporate the operation effect of PVU in sizing and sitting problem. The model is based on the dynamic assessment of PVU production and the effect of it on placement of PVU and DSTATCOM. Geographical conditions are interfered in placement problem of PVU and DSTATCOM simultaneously. The model is verified in a multi-objective form. The multi-objective problem is formulated based on voltage stability, liability, power loss and total cost of PVU and DSTATCOM. This problem is solved by employing optimization techniques and the results of optimization processes are tested in different scenarios. Uncertainty in network loads is an inevitable task that should be considered in network planning. Uncertainty in the presented model has been defined as a set of divided parts in the presented model. The proposed model has been evaluated on two test systems, 30 bus and 69 bus. The obtained results indicate that the presented model can be employed to study the intermittent behavior of PVU in placement problem.
Rocznik
Strony
1--14
Opis fizyczny
Bibliogr. 25 poz., rys., tab., wykr.
Twórcy
autor
  • Department of Engineering, Ardabil Branch, Islamic Azad University, Ardabil, Iran
autor
  • Department of electrical engineering, Islamic Azad University science and research branch, Teheran, Iran
  • Department of Engineering, Ardabil Branch, Islamic Azad University, Ardabil, Iran
Bibliografia
  • [1] Z. Wang, B. Chen, J. Wang, and M. M. Begovic, "Stochastic DG placement for conservation voltage reduction based on multiple replications procedure," IEEE Transactions on Power Delivery, vol. 30, pp. 1039-1047, 2015.
  • [2] G. A. Orfanos, P. S. Georgilakis, and N. D. Hatziargyriou, "Transmission expansion planning of systems with increasing wind power integration," IEEE Transactions on Power Systems, vol. 28, pp. 1355-1362, 2013.
  • [3] M.A. Alotaibi and M. Salama, "An incentive-based multistage expansion planning model for smart distribution systems," IEEE Transactions on Power Systems, 2018.
  • [4] M. Marinelli, P. Maule, A. N. Hahmann, 0. Gehrke, P. B. Norgard, and N. A. Cutululis, "Wind and photovoltaic large-scale regional models for hourly production evaluation," IEEE Transactions on Sustainable Energy, vol. 6, pp. 916-923, 2015.
  • [5] S. Jazebi, S. Hosseinian, and B. Vahidi, "DSTATCOM allocation in distribution networks considering reconfiguration using differential evolution algorithm," Energy Conversion and Management, vol. 52, pp. 2777-2783, 2011.
  • [6] H. Zhan, C. Wang, Y. Wang, X. Yang, X. Zhang, C. Wu, et al., "Relay protection coordination integrated optimal placement and sizing of distributed generation sources in distribution networks," IEEE Transactions on Smart Grid, vol. 7, pp. 55-65, 2016.
  • [7] S. Saha and V. Mukherjee, "Optimal placement and sizing of DGs in RDS using chaos embedded SOS algorithm," IET Generation, Transmission & Distribution, vol. 10, pp. 3671-3680, 2016.
  • [8] B. R. Pereira, G. R. M. da Costa, J. Contreras, and J. R. S. Mantovani, "Optimal distributed generation and reactive power allocation in electrical distribution systems," IEEE Transactions on Sustainable Energy, vol. 7, pp. 975-984, 2016.
  • [9] T. M. Masaud, R. D. Mistry, and P. Sen, "Placement of large-scale utility-owned wind distributed generation based on probabilistic forecasting of line congestion," IET Renewable Power Generation, 2017.
  • [10] T. M. Masaud, G. Nannapaneni, and R. Challoo, "Optimal placement and sizing of distributed generation-based wind energy considering optimal self VAR control," IET Renewable Power Generation, vol. 11, pp. 281-288, 2016.
  • [11] A. K. Bohre, G. Agnihotri, and M. Dubey, "Optimal sizing and sitting of DG with load models using soft computing techniques in practical distribution system," IET Generation, Transmission & Distribution, vol. 10, pp. 2606-2621, 2016.
  • [12] M. M. Aman, G. B. Jasmon, and H. Mokhlis, "Optimum tie switches allocation and DG placement based on maximisation of system loadability using discrete artificial bee colony algorithm,"IET Generation, Transmission & Distribution, vol. 10, pp. 2277-2284, 2016.
  • [13] H. B. Tolabi, M. H. Ali, and M. Rizwan, "Simultaneous reconfiguration, optimal placement of DSTATCOM, and photovoltaic array in a distribution system based on fuzzy-ACO approach," IEEE Transactions on sustainable Energy, vol. 6, pp. 210-218, 2015.
  • [14] M. G. Villalva and J. R. Gazoli, "Comprehensive approach to modeling and simulation of photovoltaic arrays," IEEE Transactions on Power Electronics, vol. 24, pp. 1198-1208, 2009.
  • [15] D. G. Lorente, S. Pedrazzi, G. Zini, A. Dalla Rosa, and P. Tartarini, "Mismatch losses in PV power plants," Solar Energy, vol. 100, pp. 42-49, 2014.
  • [16] S. A. Taher and S. A. Afsari, "Optimal location and sizing of DSTATCOM in distribution systems by immune algorithm," International Journal of Electrical Power & Energy Systems, vol. 60, pp. 34-44, 2014.
  • [17] P. Kayal and C. Chanda, "Placement of wind and solar based DGs in distribution system for power loss minimization and voltage stability improvement," International Journal of Electrical Power & Energy Systems, vol. 53, pp. 795-809, 2013.
  • [18] D. Q. Hung and N. Mithulananthan, "Loss reduction and loadability enhancement with DG: a dual-index analytical approach," Applied Energy, vol. 115, pp. 233-241, 2014.
  • [19] P.A. Gkaidatzis, A. S. Bouhouras, D. I. Doukas, K. I. Sgouras, and D. P. Labridis, "Load variations impact on optimal DG placement problem concerning energy loss reduction," Electric Power Systems Research, vol. 152, pp. 36-47, 2017.
  • [20] Z. Wang, B. Chen, J. Wang, J. Kim, and M. M. Begovic, "Robust optimization based optimal DG placement in microgrids," IEEE Transactions on Smart Grid, vol. 5, pp. 2173-2182, 2014.
  • [21] R. Vanitha, J. Baskaran, and M. Sudhakaran, "Multi objective optimal power flow with STATCOM using DE in WAFGP," Indian Journal of Science and Technology, vol. 8, pp. 191-198, 2015.
  • [22] A. Zeinalzadeh, Y. Mohammadi, and M. H. Moradi, "Optimal multi objective placement and sizing of multiple DGs and shunt capacitor banks simultaneously considering load uncertainty via MOPSO approach," International Journal of Electrical Power & Energy Systems, vol. 67, pp. 336-349, 2015.
  • [23] M. H. Hemmatpour, M. Mohammadian, and A. A. Gharaveisi, "Simple and efficient method for steady-state voltage stability analysis of islanded microgrids with considering wind turbine generation and frequency deviation," IET Generation, Transmission & Distribution, vol. 10, pp. 1691-1702, 2016.
  • [24] D. F. Teshome and K. L. Lian, "A smart distribution system reconfiguration algorithm with optimal active power scheduling considering various types of distributed generators," IEEJ Transactions on Electrical and Electronic Engineering, vol. 11, pp. 564-576, 2016.
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Typ dokumentu
Bibliografia
Identyfikator YADDA
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