Performance Analyzing of Stand-Alone PV Hybrid Mini-Grid System with PV at DC and AC Coupling

Article Preview

Abstract:

Stand-alone PV system has been originally developed to feed solar energy produced by PV modules into the system by using solar charger controller at DC bus called “DC Coupling” for long time. In Late 1990 there is a new concept of feeding solar energy to the PV system at AC bus called “AC Coupling”. The AC coupling system uses grid connected inverter to convert energy produced by PV modules and synchronize output to AC distribution line. In mini grid system the common AC output of Bi-directional inverters or diesel generators performs as grid forming device to supply distribution line. Since 1990 there are stand-alone PV systems designed by using DC coupling or AC coupling which each type of PV coupling system highlight their advantage over the other. The work in this document presents a comparison of the efficiency of DC coupling and AC coupling PV system design in a hybrid mini-grid and finally proposes the alternative PV system design by using the “Dual DC and AC coupling” PV system in a hybrid mini-grid design. The HOMER Pro micro-grid analysis tool which can simulate DC and AC coupling PV system is used to compare leverage cost of energy (LCOE) of different type of PV hybrid mini-grid system. The simulation software which can do performance analyzing metric according to IEC 61724 and IEA-PVPS T2 is created in this study in order to simulate system operation and performance using DC, AC and dual DC and AC coupling PV system. The conclusion can clearly identify the best PV system in hybrid mini-grid in terms of LCOE and system performance.

You might also be interested in these eBooks

Info:

Periodical:

Pages:

23-28

Citation:

Online since:

June 2016

Export:

Price:

Permissions CCC:

Permissions PLS:

Сopyright:

© 2016 Trans Tech Publications Ltd. All Rights Reserved

Share:

Citation:

[1] Alliance for Rural Electrification. Hybrid mini-grids for rural electrification; http: /www. ruralelec. org.

Google Scholar

[2] Sengprasong Phrakonkham, Jean-Yves Le Chenadec, Dembaiallo, Ghislain Remy and Claude Marchand; 2010; Reviews on micro-grid configuration and dedicated hybrid system optimization software tools: application to Laos. Engineering journal; volume14; issue3; ISSN0125-8281.

DOI: 10.4186/ej.2010.14.3.15

Google Scholar

[3] K. Moutawakkil and S. Elster; 2006; RE hybrid systems - coupling of renewable energy sources on the AC and DC side of the inverter; Refocus; vol. 7; no. 5; pp.46-48.

DOI: 10.1016/s1471-0846(06)70698-9

Google Scholar

[4] John W. Stevens and Garth P. CoreyA; Study of Lead-Acid Battery Efficiency Near Top-of-Charge and the Impact on PV System Design; Sandia National Laboratories, Photovoltaic System Applications Department and Battery Analysis and Evaluation Department.

DOI: 10.1109/pvsc.1996.564417

Google Scholar

[5] Saengprajak A.; 2007; Efficiency of Demand Side Management Measures in Small Village Electrification Systems; Doctoral Dissertation University of Kassel; Kassel.

Google Scholar

[6] Hybrid optimization model for electric renewables (HOMER) from www. nrel. gov/international/homer.

Google Scholar

[7] International Standard IEC 61724. Photovoltaic system performance monitoring - Guidelines for measurement, data exchange and analysis, International Electrotechnical Commission, Geneva, Switzerland. First Edition, April (1998).

Google Scholar

[8] Achitpon S., Wattanapong R., Nipon K., & Suchart Y.; 2007; Performance evaluation of a 10 kWp PV power system prototype for isolate building in Thailand; Renewable energy journal; 1288-1300.

DOI: 10.1016/j.renene.2006.05.002

Google Scholar

[9] Kritwiput P., Nipon K., Wattanapong R., and Suchat Y.; 2007; Performance of a-Si, p-Si, and HIT PV technology comparison under tropical wet climate condition; International journal of renewable energy; vol 2; 23 – 34.

Google Scholar

[10] Nipon Ketjoy, Chatchai Sirisamphanwong and Nattawut Khaosaad.; 2013; Performance Evaluation of 10 kWp Photovoltaic Power Generator Under Hot Climatic Condition; Energy Procedia 34; 291 – 297.

DOI: 10.1016/j.egypro.2013.06.757

Google Scholar

[11] International Energy Agency; Analysis of Photovoltaic Systems; Report IEA-PVPS T2-01; (2000).

Google Scholar

[12] Amnaj Chimtaveea, Nipon Ketjoy, Kobsak Sriprapha and Sarayooth Vaivudh; 2011; Evaluation of PV Generator Performance and Energy Supplied Fraction of the 120 kWp PV Microgrid System in Thailand; Energy Procedia 9; 117 – 127.

DOI: 10.1016/j.egypro.2011.09.013

Google Scholar

[13] Nipon Ketjoy; 2012; Performance of a Modular Expandable AC-Couple PV Diesel Hybrid System in Thailand; International Journal of Renewable Energy; Vol. 7; No. 1; 37-42.

Google Scholar

[14] A. Chimtavee and N. Ketjoy; 2012; PV Generator Performance Evaluation and Load Analysis of the PV Microgrid System in Thailand; Procedia Engineering 32; 384-391.

DOI: 10.1016/j.proeng.2012.01.1283

Google Scholar