Silicon solar photovoltaic power stations

1977 ◽  
2021 ◽  
Author(s):  
Chong Li

Abstract The aim of this study is to analyze the feasibility of the construction of 1-MW grid-connected solar photovoltaic (GCSPV) power stations at four locations of Jiangsu province, China. The economic, emission, sensitivity and risk analyses of the proposed systems are all performed using the RETScreen clean energy management software. The GCSPV system in Xuzhou is more economically viable than those in other regions under consideration, while this system in Nanjing is relatively less economically viable. The GCSPV power stations in Xuzhou have the largest annual Greenhouse gases (GHG) emissions reduction due to its largest electricity production from the proposed system. The sensitivity analysis results on NPV show significant variations due to the variations of electricity export rate (EER) and initial costs (ICs) parameters. The NPV of the proposed system increases from 707,589 $ to 2,046,766 $ with the increase of the EER, while the NPV of the system decreases with the increase of the ICs at the same of EER. The risk analysis shows the largest influence on the NPV of the project is the change of the EER with positive correlation, while the least impact on the NPV is the debt term with positive correlation.


2021 ◽  
Vol 235 ◽  
pp. 113982
Author(s):  
Pedro Cabrera ◽  
José Antonio Carta ◽  
Henrik Lund ◽  
Jakob Zinck Thellufsen

Energy ◽  
2021 ◽  
Vol 219 ◽  
pp. 119610
Author(s):  
S. Sreenath ◽  
K. Sudhakar ◽  
Yusop AF

2021 ◽  
Vol 11 (2) ◽  
pp. 727 ◽  
Author(s):  
Myeong-Hwan Hwang ◽  
Young-Gon Kim ◽  
Hae-Sol Lee ◽  
Young-Dae Kim ◽  
Hyun-Rok Cha

In recent years, photovoltaic (PV) power generation has attracted considerable attention as a new eco-friendly and renewable energy generation technology. With the recent development of semiconductor manufacturing technologies, PV power generation is gradually increasing. In this paper, we analyze the types of defects that form in PV power generation panels and propose a method for enhancing the productivity and efficiency of PV power stations by determining the defects of aging PV modules based on their temperature, power output, and panel images. The method proposed in the paper allows the replacement of individual panels that are experiencing a malfunction, thereby reducing the output loss of solar power generation plants. The aim is to develop a method that enables users to immediately check the type of failures among the six failure types that frequently occur in aging PV panels—namely, hotspot, panel breakage, connector breakage, busbar breakage, panel cell overheating, and diode failure—based on thermal images by using the failure detection system. By comparing the data acquired in the study with the thermal images of a PV power station, efficiency is increased by detecting solar module faults in deteriorated photovoltaic power plants.


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