Performance Analysis Through Modeling & Simulation of Different Power Converters using MATLAB/Simulink

Show simple item record

dc.contributor.author Bashar, Md. Hasibul
dc.contributor.author Shadat, Khondokar Anwar
dc.contributor.author Marsad, Mecdad
dc.date.accessioned 2020-11-03T17:33:16Z
dc.date.available 2020-11-03T17:33:16Z
dc.date.issued 2018-11-15
dc.identifier.citation [1] Kumar, J. Sai, and Tikeshwar Gajpal. "A Multi Input DC-DC Converter for Renewable Energy Applications." (2016). [2] Ortiz, G., J. Biela, D. Bortis, and J. W. Kolar. "1 Megawatt, 20 kHz, isolated, bidirectional 12kV to 1.2 kV DC-DC converter for renewable energy applications." In Power Electronics Conference (IPEC), 2010 International, pp. 3212-3219. IEEE, 2010. [3] Li, Wuhua, Xiaodong Lv, Yan Deng, Jun Liu, and Xiangning He. "A review of non- isolated high step-up DC/DC converters in renewable energy applications." In Applied Power Electronics Conference and Exposition, 2009. APEC 2009. Twenty-Fourth Annual IEEE, pp. 364- 369. IEEE, 2009. [4] Koutroulis, Eftichios, and Kostas Kalaitzakis. "Design of a maximum power tracking system for wind-energy-conversion applications." IEEE transactions on industrial electronics 53, no. 2 (2006): 486-494. [5] Ferdous, S. M., Mohammad Abdul Moin Oninda, Golam Sarowar, Kazi Khairul Islam, and Md Ashraful Hoque. "Non-isolated single stage PFC based LED driver with THD minimization using Cúk converter." In Electrical and Computer Engineering (ICECE), 2016 9th International Conference on, pp. 471-474. IEEE, 2016. [6] Yang, Bo, Fred C. Lee, A. J. Zhang, and Guisong Huang. "LLC resonant converter for front end DC/DC conversion." In Applied Power Electronics Conference and Exposition, 2002. APEC 2002. Seventeenth Annual IEEE, vol. 2, pp. 1108-1112. IEEE, 2002. [7] Wei, Huai, and Issa Batarseh. "Comparison of basic converter topologies for power factor correction." In Southeastcon'98. Proceedings. IEEE, pp. 348-353. IEEE, 1998. [8] Daniele, Matteo, Praveen K. Jain, and Geza Joos. "A single-stage powerfactor- corrected AC/DC converter." IEEE Transactions on Power Electronics 14, no. 6 (1999): 1046-1055. [9] Rathi, Ms Kashmira, and Dr MS Ali. "Design and Simulation of PID Controller for Power Electronics Converter Circuits." International Journal Of Innovative And Emerging Research In Engineering 3, no. 2 (2016): 26-31. [10] Dave, Mitulkumar R., and K. C. Dave. "Analysis of boost converter using pi control algorithms." International Journal of Engineering Trends and Technology 3.2 (2012): 71- 73. [11] R.W. Erickson, D. Maksimovic, and ebrary Inc. (2001). Fundamentals of power electronics (2nd ed.). http://www.springer.com/gp/book/9780792372707 [12] B.K. Bose, Modern power electronics and AC Drives. Upper Saddle River, NJ: Prentice Hall PTR, 2002. [13] S.Buso and P. Mattavelli, Digital control in power electronics, 1st ed. San Rafael, Calif: Morgan & Claypool Publishers, 2006. [14] D.W. Hart, Power electronics. New York: McGraw-Hill, 2011. [15] B.W. Kennedy. (2000). Power quality primer. Available: https://www.amazon.com/Power-Quality-Primer-Barry-Kennedy/dp/0071737979 [16] N. Mohan, Power electronics: a first course. Hoboken, N.J.: Wiley, 2012. [17] N. Mohan, T.M. Undeland, and W.P. Robbins. (2003). Power electronics: converters, applications, and design (3rd ed.). [18] Raviraj, V. S. C., and Paresh C. Sen. "Comparative study of proportional-integral, sliding mode, and fuzzy logic controllers for power converters." IEEE Transactions on Industry Applications 33, no. 2 (1997): 518-524. [19] Meena, Rajendra. "Simulation study of boost converter with various control techniques." International Journal of Science and Research (IJSR) 3, no. 9 (2014): 74-79. [20] W. Lu, S. Lang, L. Zhou, H. H. C. Iu and T. Fernando, "Improvement of Stability and Power Factor in PCM Controlled Boost PFC Converter With Hybrid Dynamic Compensation," in IEEE Transactions on Circuits and Systems I: Regular Papers, vol. 62, no. 1, pp. 320-328, Jan. 2015. [21] Z. Guo, X. Ren, Y. Wu, Z. Zhang and Q. Chen, "A novel simplified variable on-time method for CRM boost PFC converter," 2017 IEEE Applied Power Electronics Conference and Exposition (APEC), Tampa, FL, USA, 2017, pp. 1778-1784. [22] T. Meng; H. Ben; Y. Song, "Investigation and Implementation of a Starting and Voltage Spike Suppression Scheme for Three-Phase Isolated Full-Bridge Boost PFC Converter," in IEEE Transactions on Power Electronics, vol.PP, no.99, pp.1-1. [23] I. H. Kim and Y. I. Son, "Regulation of a DC/DC Boost Converter Under Parametric Uncertainty and Input Voltage Variation Using Nested Reduced-Order PI Observers," in IEEE Transactions on Industrial Electronics, vol. 64, no. 1, pp. 552-562, Jan. 2017. [24] J. Ma, M. Zhu, J. Zhang and X. Cai, "Improved asynchronous voltage regulation strategy of non-inverting Buck-Boost converter for renewable energy integration," 2015 IEEE 2nd International Future Energy Electronics Conference (IFEEC), Taipei, 2015, pp. 1-5. [25] A. Singh, A. A. Milani and B. Mirafzal, "Voltage regulation in singlestage boost inverter for stand-alone applications," 2014 IEEE Applied Power Electronics Conference and Exposition - APEC 2014, Fort Worth, TX, 2014, pp. 3011-3016. [26] O. Ibrahim, N. Z. Yahaya and N. Saad, "Comparative studies of PID controller tuning methods on a DC-DC boost converter," 2016 6th International Conference on Intelligent and Advanced Systems (ICIAS), Kuala Lumpur, 2016, pp. 1-5. [27] L. Mitra and N. Swain, "Closed loop control of solar powered boost converter with PID controller," 2014 IEEE International Conference on Power Electronics, Drives and Energy Systems (PEDES), Mumbai, 2014, pp. 1-5. [28] P. Verma, N. Patel, N. K. C. Nair and A. Sikander, "Design of PID controller using cuckoo search algorithm for buck-boost converter of LED driver circuit," 2016 IEEE 2nd Annual Southern Power Electronics Conference (SPEC), Auckland, 2016, pp. 1-4. [29] H Atlas, A.M Sharaf, "A photovoltaic Array Simulation Model for Matlab-Simulink GUI Environment”, Proce. of IEEE International Conference on Clean Electrical Power, ICCEP 2007, Capri, Italy. [30] Jesus Leyva-Ramos, Member, IEEE, and Jorge Alberto Morales-Saldana," A design criteria for the current gain in Current Programmed Regulators", IEEE Transactions on industrial electronics, Vol. 45, No. 4, August 1998. [31] K.H. Hussein, I. Muta, T. Hoshino, M. Osakada, "Maximum photovoltaic power tracking: an algorithm for rapidly changing atmospheric conditions", IEE Proc.-Gener. Trans. Distrib., Vol. 142,No. 1, January 1995. [32] Mirza Fuad Adnan, Mirza Muntasir Nishat, Mohammad Abdul Moin Oninda. “Design and Simulation of a DC - DC Boost Converter with PID Controller for Enhanced Performance.” International Journal of Engineering Research & Technology (IJERT), ISSN: 2278-0181 [33] W. Xiao, W. G. Dunford, and A. Capel, “A novel modeling method for photovoltaic cells”, in Proc. IEEE 35th Annu. Power Electron. Spec. Conf. (PESC), 2004, vol. 3, pp. 1950–1956. [34] IEEE Standard Definitions of Terms for Solar Cells, 1969. [35] Oliva Mah NSPRI, "Fundamentals of Photovoltaic Materials", National Solar power institute, Inc. 12/21/98. [36] Muhammad H. Rashid, “Power Electronics Circuits, Devices and Applications”, Third Edition. [37] Modelling and Control design for DC-DC converter, Power Management group, AVLSI Lab, IIT-Kharagpur. [38] Nielsen, R. 2005, 'Solar Radiation', http://home.iprimus.com.au/nielsens/ [39] www.earthscan.co.uk/Portals/ (Accessed on August 18, 2018) [40] Application of non-conventional & renewable energy sources, Bureau of Energy Efficiency. [41] http://en.wikipedia.org/wiki/Solar_power (Accessed on May 24, 2018) [42] http://en.wikipedia.org/wiki/Photovoltaic_system (Accessed on May 24, 2018) [43] http://en.wikipedia.org/wiki/Solar_panel (Accessed on May 26, 2018) [44] http://www.blueplanet-energy.com/images/solar/PV-cell-module-array.gif/ (Accessed on May 29, 2018) [45] http://www.rids-nepal.org/index.php/Solar_Photo_Voltaic.html (Accessed on June 12, 2018) [46] www.solarhome.ru/img/pv/IV_curve_e.jpg. (Accessed on May 24, 2018) [47] http://ecee.colorado.edu/~bart/book/eband5.htm. (Accessed on May 24, 2018) [48] https://en.wikipedia.org/wiki/Overshoot_(signal) (Accessed on November 09, 2018) en_US
dc.identifier.uri http://hdl.handle.net/123456789/650
dc.description Supervised by Muhammad Assistant Professor Department of Electrical and Electronic Engineering, Islamic University of Technology (IUT), Boardbazar, Gazipur-1704. en_US
dc.description.abstract The recent upsurge in the demand of PV systems is due to the fact that they produce electric power without hampering the environment by directly converting the solar radiation into electric power. However, the solar radiation never remains constant. It keeps on varying throughout the day. The need of the hour is to deliver a constant voltage to the grid irrespective of the variation in temperatures and solar insolation. We have designed a circuit such that it delivers constant and stepped up dc voltage to the load. We have studied the closed loop characteristics of the PV array with variation in temperature and irradiation levels. Then we coupled the PV array with the boost converter in such a way that with variation in load, the varying input current and voltage to the converter follows the open circuit characteristic of the PV array closely. At various insolation levels, the load is varied and the corresponding variation in the input voltage and current to the boost converter is noted. It is noted that the changing input voltage and current follows the open circuit characteristics of the PV array closely. Initially three basic converters namely Buck, Boost and Buck-Boost were studied. Proper voltage regulation is obtained with the use of PID controller along with the converter. The proposed converters offered better efficiency, reduced overshoot. Converters offers best performances in simulation have been implemented in laboratory experiment. The input power of the converter is taken from the Photovoltaic cell which contains high distortion and harmonics. Moreover, it is a weak signal. For this step up, step down converters are used and with the integration of PID, better quality power supply can be ensured. en_US
dc.language.iso en en_US
dc.publisher Department of Electrical and Electronic Engineering, Islamic University of Technology, Board Bazar, Gazipur, Bangladesh en_US
dc.title Performance Analysis Through Modeling & Simulation of Different Power Converters using MATLAB/Simulink en_US
dc.type Thesis en_US


Files in this item

This item appears in the following Collection(s)

Show simple item record

Search IUT Repository


Advanced Search

Browse

My Account

Statistics