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Bifacial Photovoltaics : technology, applications and economics /

This book begins with an introduction to bifacial solar cells and goes on to look at design, characterisation, reliability; energy yield prediction simulation models; PV systems and yield data (bifacial gain); levelized cost of PV-generated electricity; PV technologies market introduction and their...

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Detalles Bibliográficos
Clasificación:Libro Electrónico
Otros Autores: Libal, Joris (Editor ), Kopecek, Radovan (Editor )
Formato: Electrónico eBook
Idioma:Inglés
Publicado: London : Institution of Engineering and Technology, 2018.
Colección:IET energy engineering series ; 107.
Temas:
Acceso en línea:Texto completo

MARC

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245 0 0 |a Bifacial Photovoltaics :  |b technology, applications and economics /  |c edited by Joris Libal and Radovan Kopecek. 
264 1 |a London :  |b Institution of Engineering and Technology,  |c 2018. 
264 4 |c ©2019 
300 |a 1 online resource (304 pages) :  |b illustrations 
336 |a text  |b txt  |2 rdacontent 
337 |a computer  |b c  |2 rdamedia 
338 |a online resource  |b cr  |2 rdacarrier 
490 1 |a IET energy engineering ;  |v 107 
588 0 |a Print version record. 
504 |a Includes bibliographical references and index. 
520 |a This book begins with an introduction to bifacial solar cells and goes on to look at design, characterisation, reliability; energy yield prediction simulation models; PV systems and yield data (bifacial gain); levelized cost of PV-generated electricity; PV technologies market introduction and their bankability; geographic location and environmental conditions relating to bifacial gain; and prospects for the future. 
588 0 |a Online record; title from digital title page (viewed on January 18, 2019). 
505 0 |a Intro; Contents; Acknowledgements; About the authors; 1. Introduction (Radovan Kopecek and Joris Libal); 1.1 PV 2017 -- history, present and future; 1.1.1 PV becomes the most cost-effective electricity source; 1.1.2 What PV technology will win at the end?; 1.2 Bifacial PV 2018 -- history, present and future; 1.2.1 Short bifacial history; 1.2.2 Bifacial status; 1.2.3 Bifacial future; 1.2.4 Changing to cost per kWh thinking instead of cost per Wp mentality; 1.3 Bifacial book 2018; 1.3.1 Latest bifacial publications and presentations; 1.3.2 Chapters of our bifacial book; References. 
505 8 |a 2. Bifacial cells (Ingrid Romijn, Gaby Janssen, Thorsten Dullweber, Bas van Aken, Naftali Eisenberg, Lev Kreinin, Matthieu Despeisse, Valentin Mihailetchi, Jan Lossen, Wolfgang Jooss and Radovan Kopecek)2.1 Introduction; 2.2 History of bifacial cells (from 1960 to 2016); 2.3 Characteristics of bifacial cells; 2.3.1 Bifaciality factor; 2.3.2 Parameters influencing the bifaciality factor j; 2.3.3 Design of bifacial cells; 2.4 Characterization of bifacial cells; 2.4.1 Measuring bifacial cells; 2.4.2 IV measurements under bifacial irradiation; 2.5 Different types of bifacial solar cells. 
505 8 |a 2.5.1 Heterojunction solar cells2.5.2 n-PERT solar cells; 2.5.3 p-PERT solar cells; 2.5.4 p-PERCþ solar cells; 2.5.5 Bifacial back contact solar cells; 2.6 Industrial solar cell technology roadmap; 2.6.1 Industry status in 2017; 2.6.2 Solar cell technology predictions (ITRPV); References; 3. Bifacial modules: design options, characterisation and reliability (Andreas Schneider, Bas van Aken, Eric Gerritsen, Jai Prakash, Vahid Fakhfouri, Khoo Yong Sheng and Andreas Halm); 3.1 Bifacial PV modules: design and characterisation; 3.1.1 Design considerations for bifacial modules. 
505 8 |a 3.1.2 Cell-to-module loss analysis in bifacial PV modules3.2 Optical module design options with bifacial cells and light management; 3.2.1 Optical module design options with bifacial cells; 3.2.2 Light management in bifacial modules; 3.3 Electrical design and interconnect options with bifacial cells: half-cut cells, multi-busbar and multi-wire concepts; 3.3.1 Multi-busbar interconnection; 3.3.2 Half cells and smaller; 3.3.3 Shingles and other stacking options; 3.3.4 Interconnection of back-contact solar cells; 3.4 Characterisation of bifacial devices; 3.4.1 Bifacial I-V characterisation. 
505 8 |a 3.4.2 Imaging methods3.4.3 Outdoor measurements on single modules; 3.5 Modelling of bifacial modules; 3.5.1 Electrical models; 3.5.2 Thermal behaviour; 3.5.3 Optical modelling; 3.6 Reliability and durability of bifacial modules; 3.6.1 Effect of higher output current; 3.6.2 Heat management; 3.6.3 Selection of module materials for bifacial modules; 3.6.4 Discussion on current IEC 61215 testing and its suitability for bifacial modules; 3.6.5 General discussion on safety aspects; References. 
590 |a Knovel  |b ACADEMIC - Sustainable Energy & Development 
650 0 |a Electric power production. 
650 0 |a Electric power systems  |x Reliability. 
650 0 |a Electric utilities. 
650 0 |a Photovoltaic power systems. 
650 0 |a Solar cells. 
650 6 |a Électricité  |x Production. 
650 6 |a Réseaux électriques (Énergie)  |x Fiabilité. 
650 6 |a Services publics d'électricité. 
650 6 |a Systèmes photovoltaïques. 
650 6 |a Cellules solaires. 
650 7 |a electric power production.  |2 aat 
650 7 |a electric utilities.  |2 aat 
650 7 |a solar cells.  |2 aat 
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650 7 |a Electric power production.  |2 fast  |0 (OCoLC)fst00905475 
650 7 |a Electric power systems  |x Reliability.  |2 fast  |0 (OCoLC)fst00905583 
650 7 |a Electric utilities.  |2 fast  |0 (OCoLC)fst00905974 
650 7 |a Photovoltaic power systems.  |2 fast  |0 (OCoLC)fst01062185 
650 7 |a Solar cells.  |2 fast  |0 (OCoLC)fst01124932 
650 7 |a photovoltaic power systems.  |2 inspect 
650 7 |a power generation economics.  |2 inspect 
650 7 |a power generation reliability.  |2 inspect 
650 7 |a solar cells.  |2 inspect 
700 1 |a Libal, Joris,  |e editor. 
700 1 |a Kopecek, Radovan,  |e editor. 
776 0 8 |i Print version:  |t Bifacial photovoltaics.  |d Stevenage : IET, 2018  |z 1785612743  |z 9781785612749  |w (OCoLC)1028526168 
830 0 |a IET energy engineering series ;  |v 107. 
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