Method for Calculating the Capacity of Solar Power Plants and its Implementation in LabVIEW Environment

The paper presents the method for calculating the capacity of an autonomous solar power plant and its components. This method allows considering a load variation during the day as well as specifying the required capacity of the battery and excluding an unjustified overestimation of the power plant c...

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Main Authors: Okhotkin Grigory, Serebryannikov Alexander, Zakharov Valery, Chumarov Sergey
Format: Article
Language:English
Published: EDP Sciences 2019-01-01
Series:E3S Web of Conferences
Online Access:https://www.e3s-conferences.org/articles/e3sconf/pdf/2019/66/e3sconf_eece18_11007.pdf
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spelling doaj-8c91d785b8844162b20e9d5316c805412021-02-02T05:31:05ZengEDP SciencesE3S Web of Conferences2267-12422019-01-011401100710.1051/e3sconf/201914011007e3sconf_eece18_11007Method for Calculating the Capacity of Solar Power Plants and its Implementation in LabVIEW EnvironmentOkhotkin GrigorySerebryannikov AlexanderZakharov ValeryChumarov SergeyThe paper presents the method for calculating the capacity of an autonomous solar power plant and its components. This method allows considering a load variation during the day as well as specifying the required capacity of the battery and excluding an unjustified overestimation of the power plant component capacities along with the increase in efficiency of the autonomous solar power plant. Formula for determining the required battery capacity of an autonomous solar power plant could be easily generalized for any number of changes in the load schedule steps. Virtual instruments (calculators) for calculating the capacity of an autonomous solar power plant and its components have been developed on the basis of this method in LabVIEW environment. These calculators may have a rather high visibility, ease of use and low memory requirements along with less computing time spent on calculations. The first calculator may allow recalculating capacities of loads on the power plant main supply bus as well as determining the energy consumption of loads per day. The second calculator may be used for determining the required capacity and number of batteries as well as the capacity of the charger, inverters, main supply bus and solar modules along with the solar power plant efficiency.https://www.e3s-conferences.org/articles/e3sconf/pdf/2019/66/e3sconf_eece18_11007.pdf
collection DOAJ
language English
format Article
sources DOAJ
author Okhotkin Grigory
Serebryannikov Alexander
Zakharov Valery
Chumarov Sergey
spellingShingle Okhotkin Grigory
Serebryannikov Alexander
Zakharov Valery
Chumarov Sergey
Method for Calculating the Capacity of Solar Power Plants and its Implementation in LabVIEW Environment
E3S Web of Conferences
author_facet Okhotkin Grigory
Serebryannikov Alexander
Zakharov Valery
Chumarov Sergey
author_sort Okhotkin Grigory
title Method for Calculating the Capacity of Solar Power Plants and its Implementation in LabVIEW Environment
title_short Method for Calculating the Capacity of Solar Power Plants and its Implementation in LabVIEW Environment
title_full Method for Calculating the Capacity of Solar Power Plants and its Implementation in LabVIEW Environment
title_fullStr Method for Calculating the Capacity of Solar Power Plants and its Implementation in LabVIEW Environment
title_full_unstemmed Method for Calculating the Capacity of Solar Power Plants and its Implementation in LabVIEW Environment
title_sort method for calculating the capacity of solar power plants and its implementation in labview environment
publisher EDP Sciences
series E3S Web of Conferences
issn 2267-1242
publishDate 2019-01-01
description The paper presents the method for calculating the capacity of an autonomous solar power plant and its components. This method allows considering a load variation during the day as well as specifying the required capacity of the battery and excluding an unjustified overestimation of the power plant component capacities along with the increase in efficiency of the autonomous solar power plant. Formula for determining the required battery capacity of an autonomous solar power plant could be easily generalized for any number of changes in the load schedule steps. Virtual instruments (calculators) for calculating the capacity of an autonomous solar power plant and its components have been developed on the basis of this method in LabVIEW environment. These calculators may have a rather high visibility, ease of use and low memory requirements along with less computing time spent on calculations. The first calculator may allow recalculating capacities of loads on the power plant main supply bus as well as determining the energy consumption of loads per day. The second calculator may be used for determining the required capacity and number of batteries as well as the capacity of the charger, inverters, main supply bus and solar modules along with the solar power plant efficiency.
url https://www.e3s-conferences.org/articles/e3sconf/pdf/2019/66/e3sconf_eece18_11007.pdf
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