Now accepting submissions for the upcoming volume
Electronic and Acoustic Engineering
ISSN 2524-2725 · e‑ISSN 2617-0965 Open Access · CC BY-NC 4.0
Vol. 2 · Issue 3 · 2019 Jun 28, 2019 Electronic Systems and Signals

Automated system for determining parameters of a solar cell model

DH
Dmytro Viktorovych Humeniuk Corresponding National Technical University of Ukraine “Igor Sikorsky Kyiv Polytechnic Institute” gumenyuk98@gmail.com Ukraine
Pages21-26 PublishedJun 28, 2019 LicenseOpen Access
EAE 3 VOL 2 · 3
VOL 2 · NO 3 · 2019 View issue

Abstract

An automated system is developed, which allows measuring the light and dark current-voltage characteristics (CVC) of a solar cell (SC). It consists of a STM32 based control unit, a digital-to-analog converter, a voltage-current transformation circuit, a current and voltage sensor and a laptop with a LabVIEW graphical programming environment. The digital voltage value from STM32 is transmitted to the AD5624R DAC via the SPI interface. AD5624R is a 12 bit DAC with built-in reference voltage 2,5 V. In this configuration, the accuracy of the voltage control is 1,2 mV and the accuracy of the current setting is 40 μA. INA226 sensor was used to measure the voltage on the sample and the current flowing through it. The current is measured as the voltage drop across the shunt resistor, which is connected to the corresponding sensor inputs, using the built-in 16-bit ADC. A shunt resistor with a resistance of 0.1 Ohm is used, which allows measuring the current up to 800 mA with a resolution of 25 μA. The readings of the sensor were calibrated using the precision voltmeter B7-46. Measurement and data processing is carried out with a virtual device created in the LabVIEW environment. As a microcontroller, the SM32F401RE Nucleo development board was used. This unit provides control of the DAC, the current sensor INA226, connection of the circuit for measuring light or dark CVC, as well as recording and storing the data received from sensors in the computer.  By measuring the light and dark current-voltage characteristics it is possible to obtain an approximate solar cell model, the parameters of which depend on the illumination and temperature. Solar cell light CVC is used to determine the photocurrent. By its value at a certain temperature and luminosity, it’s possible to define the photocurrent at different temperatures and luminosity levels. The saturation current and the parameter α of the solar cell are calculated using the dark CVC. With the obtained data, a model of a solar cell is defined, which can be further used to determine the maximum power point at different levels of illumination and temperature. With information about the maximum power point, it is possible to calculate the optimal resistance value for the solar cell and to provide the corresponding control signal to the voltage converter. An approach for calculating the parameters of the SC model from its CVC is described and used to determine the MPP (maximum power point) of the solar cell module. The difference with the experimental data was 6.6%. In further research, the study of methods for calculating the parameters of the SC, which could provide a more accurate model, will be continued.

Keywords

References

  1. D. P. Hohm and M. E. Ropp, “Comparative study of maximum power point tracking algorithms,” Prog. Photovoltaics Res. Appl., vol. 11, no. 1, pp. 47–62, Jan. 2003, DOI: 10.1002/pip.459.
  2. Van der Merwe L, van der Merwe G, “Maximum power point tracking—implementation strategies,” Proceedings of the IEEE International Symposium on Industrial Electronics, pp. 214–217, 1998, DOI: 10.1109/ISIE.1998.707779
  3. Garrigos A., Blanes J.M., Carrasco J.A., Ejea J.B., “Real time estimation of photovoltaic modules characteristics and its application to maximum power point operation”, Renewable Energy, pp. 1059 – 1076, 2007. DOI: 10.1016/j.renene.2006.08.004
  4. Koval O.S., Tyvanov M.S., “Opredelenye parametrov solnechnoho elementa yz eho svetovoi volt-ampernoi kharakterystyky [Determination of parameters of a solar cell from its light current-voltage characteristic], ” Vestnyk BHU. Ser. 1. №2, pp. 39 – 44, 2012.
  5. Lyhachev V.A., Popov A.Y., Laboratornaia rabota “Spektralnaia chuvstvytelnost y volt – ampernaia kharakterystyka solnechnoho elementa po kursu “Fyzyka y tekhnolohyia pryborov osnove nekrystallycheskykh poluprovodnykov” [Spectral sensitivity and volt - ampere characteristic of a solar cell]” - Moskow.: yzd-vo MЭY, 1999.
  6. T. V. Fedchenko and A. V Levshov, “Ekvyvalentnaia skhema fotoelektrycheskoho elementa y ee parametry [Equivalent circuit of a photovoltaic cell and its parameters].” [Online]. Available: http://ea.donntu.org:8080/jspui/bitstream/123456789/26961/1/%D0%A4%D0%B5%D0%B4%D1%87%D0%B5%D0%BD%D0%BA%D0%BE%20%D0%A2.%D0%92,%20%D0%9B%D0%B5%D0%B2%D1%88%D0%BE%D0%B2%20%D0%90.%D0%92%20%D0%AD%D0%9A%D0%92%D0%98%D0%92%D0%90%D0%9B%D0%95%D0%9D%D0%A2%D0%9D%D0%90%D0%AF%20%D0%A1%D0%A5%D0%95%D0%9C%D0%90.pdf [Accessed: 13-Apr-2019].
  7. Atia Y., Zahran M., “A novel system for photovoltaic solar cell test and characteristic measurements,” Engineering Research Journal, Vol. 32, №4, 2009.
  8. Raushenbah. G “Spravochnik po proektirovaniyu solnechnyh batarej [Solar paner design guide],” Energoatomizdat, pp. 14-15, 1983
  9. B. N. Sharyfov and T. R. Terehulov, “Modelyrovanye solnechnoi panely v prohramme MATLAB/Simulink, [Modeling a solar panel in MATLAB / Simulink],” Vestnyk UTATU T. 19, № 4 (70), 2015. [Online]. Available: https://bit.ly/2VlXTaY. [Accessed: 13-Apr-2019].
  10. Treshch A. M “Modelirovanie solnechnyh batarej v srede Matlab/Simulink [Simulation of solar panels in Matlab / Simulink environment],” Doklady BGUIR, №7 (69), pp. 111-115, 2012. [Online]. Available: https://cyberleninka.ru/article/v/modelirovanie-ekspluatatsionnyh-harakteristik-solnechnyh-batarey-v-srede-matlab-simulink[Accessed: 13-Apr-2019].
  11. Quad, 12-/14-/16-Bit nanoDACs with 5 ppm/°C On-Chip Reference AD5624R/AD5644R/AD5664R, Data Sheet Rev. C, Analog Devices. [Online]. Available: https://www.analog.com/media/en/technical-documentation/data-sheets/ad5624_5664.pdf.
  12. INA226 High-Side or Low-Side Measurement, Bi-Directional Current and Power Monitor with I 2C Compatible Interface, Datasheet, Texas Instruments. Available: http://www.ti.com/lit/ds/symlink/ina226.pdf [Accessed: 13-Apr-2019].

License

CCBY-NC 4.0
Creative Commons Attribution 4.0 International

This work is openly licensed — share and adapt freely with attribution to the authors and the journal. View license terms ↗

§ 06 — Related

Similar articles in this journal

Related peer-reviewed studies published in this journal.
View all issues

Most read articles by the same author(s)

Similar Articles

1-10 of 69

You may also start an advanced similarity search for this article.