Warning! You are not logged in. Log in or create an account to have your edits attributed to your username rather than your IP, along with other benefits.

The edit can be undone. Please check the comparison below to verify that this is what you want to do, and then publish the changes below to finish undoing the edit.

Latest revision Your text
Line 11: Line 11:
'''Adiyabat, A., Kurokawa, K., 2002. Performance analysis of portable photovoltaic power generation systems based on measured data in Mongolia. Photovoltaic Specialists Conference, 2002. Conference Record of the Twenty-Ninth IEEE 1664 – 1667.''' [http://ieeexplore.ieee.org/xpl/articleDetails.jsp?arnumber=1190937].
'''Adiyabat, A., Kurokawa, K., 2002. Performance analysis of portable photovoltaic power generation systems based on measured data in Mongolia. Photovoltaic Specialists Conference, 2002. Conference Record of the Twenty-Ninth IEEE 1664 – 1667.''' [http://ieeexplore.ieee.org/xpl/articleDetails.jsp?arnumber=1190937].


The paper describes exploitation of a portable PV system designated to provide electric power for nomadic camps in Mongolia. The locations are featured low temperatures and humidity.
The paper describes the research given on exploitation of a portable PV system designated to provide electric power for nomadic campuses in Mongolia. The locations are featured low temperatures and humidity.
The portable system consists of a PV module, comprising a PV panel with rated output of 204 W and leg block, charge controller, inverter, two lead-acid batteries of 12V, 70 Ah and also data acquisition unit. The system is rated at a load of approximately 280 Wh/day that provides electric power for radio, television, incandescent and fluorescent lamps.
The portable system consists of a PV module, comprising a PV panel with rated output of 204 W and leg block, charge controller, inverter, two lead-acid batteries of 12V, 70 Ah and also data acquisition unit. The system is rated at a load of approximately 280 Wh/day that provides electric power for radio, television, incandescent and fluorescent lamps.
Yearly average in-plane irradiance varies from 4.71 to 4.88 kWh/m2 per day. Due to higher electric power demand and lower irradiance during winter season, disconnection losses are lower in winter and higher in summer time.
Yearly average in-plane irradiance varies from 4.71 to 4.88 kWh/m2 per day. Due to higher electric power demand and lower irradiance during winter season, disconnection losses are lower in winter and higher in summer time.
Warning! All contributions to Appropedia are released under the CC-BY-SA-4.0 license unless otherwise noted (see Appropedia:Copyrights for details). If you do not want your writing to be edited mercilessly and redistributed at will, then do not submit it here! You are also promising us that you wrote this yourself, or copied it from a public domain or similar free resource. Do not submit copyrighted material without permission!
Cancel Editing help (opens in new window)

This page is a member of a hidden category:

Cookies help us deliver our services. By using our services, you agree to our use of cookies.