Citation: Lutz Sommer. Comparative analysis of printed electronic circuits applying different printing technologies in the endurance test[J]. AIMS Electronics and Electrical Engineering, 2018, 2(1): 12-26. doi: 10.3934/ElectrEng.2018.1.12
[1] | Pasquale Marcello Falcone . Editorial to the 'Special Issue—Energy transition in a circular economy perspective' of AIMS Energy. AIMS Energy, 2022, 10(4): 582-584. doi: 10.3934/energy.2022029 |
[2] | Mamdouh El Haj Assad, Siamak Hoseinzadeh . Editorial to the 'Special Issue-Analyzing energy storage systems for the applications of renewable energy sources' of AIMS Energy. AIMS Energy, 2022, 10(5): 1074-1076. doi: 10.3934/energy.2022050 |
[3] | Santi Agatino Rizzo . Editorial to the 'Special Issue—Distribution network reliability in Smart Grids and Microgrids' of AIMS Energy. AIMS Energy, 2022, 10(3): 533-534. doi: 10.3934/energy.2022026 |
[4] | Abshir Ashour, Taib Iskandar Mohamad, Kamaruzzaman Sopian, Norasikin Ahmad Ludin, Khaled Alzahrani, Adnan Ibrahim . Performance optimization of a photovoltaic-diesel hybrid power system for Yanbu, Saudi Arabia. AIMS Energy, 2021, 9(6): 1260-1273. doi: 10.3934/energy.2021058 |
[5] | Jin H. Jo, Kadi Ilves, Tyler Barth, Ellen Leszczynski . Correction: Implementation of a large-scale solar photovoltaic system at a higher education institution in Illinois, USA. AIMS Energy, 2017, 5(2): 313-315. doi: 10.3934/energy.2017.2.313 |
[6] | Jin H. Jo, Zachary Rose, Jamie Cross, Evan Daebel, Andrew Verderber, John C. Kostelnick . Application of Airborne LiDAR Data and Geographic Information Systems (GIS) to Develop a Distributed Generation System for the Town of Normal, IL. AIMS Energy, 2015, 3(2): 173-183. doi: 10.3934/energy.2015.2.173 |
[7] | Taihana Paula, Maria de Fatima Marques . Recent advances in polymer structures for organic solar cells: A review. AIMS Energy, 2022, 10(1): 149-176. doi: 10.3934/energy.2022009 |
[8] | Peter Majewski, Rong Deng, Pablo R Dias, Megan Jones . Product stewardship considerations for solar photovoltaic panels. AIMS Energy, 2023, 11(1): 140-155. doi: 10.3934/energy.2023008 |
[9] | Sabir Rustemli, Zeki İlcihan, Gökhan Sahin, Wilfried G. J. H. M. van Sark . A novel design and simulation of a mechanical coordinate based photovoltaic solar tracking system. AIMS Energy, 2023, 11(5): 753-773. doi: 10.3934/energy.2023037 |
[10] | Md. Mehadi Hasan Shamim, Sidratul Montaha Silmee, Md. Mamun Sikder . Optimization and cost-benefit analysis of a grid-connected solar photovoltaic system. AIMS Energy, 2022, 10(3): 434-457. doi: 10.3934/energy.2022022 |
In most of the countries, the solar photovoltaic systems have reached to the grid parity. The higher capacity of solar photovoltaic power plants are connecting within the higher and medium voltage networks, and lower capacity photovoltaic units within the low voltage network (i.e., distributed network). There are many technical challenges for integrating the solar PV plants at higher voltage levels as well as lower voltage levels. The key challenging issues, for increasing further penetration of solar photovoltaic systems in the electrical power network, are technology developments for intelligent power conditioning devices, integration of hybrid energy storage for making solar photovoltaic system as dispatchable power source, mitigation of power quality issues, demand side management, technology development of solar photovoltaic based micro-grid, techno-economic operational strategies, etc.
The solar photovoltaic system engineering depends on many factors (e.g., techno-economic sizing, energy management, energy dispatch strategies, resources allocations etc.). Different geographical locations as well as climatic conditions also influence the operation and performance of the solar photovoltaic-based system. The incident solar radiation has significant impact on the solar photovoltaic system energy production. The solar photovoltaic system energy output is influenced by the geometrical configuration of photovoltaic array and the view factor to sky effect. In the recent years, there are many technical innovations, developments have happened for deployments of solar photovoltaic system grid integration with energy storage for participating either as an active generator or operating as a solar photovoltaic based micro-grid. Within the distributed energy network, solar photovoltaic systems can also be used as ‘building integrated photovoltaic systems (BIPV)’ to provide electrical energy locally and make the buildings as ‘zero energy buildings (ZEBs)’. In future, ZEBs are going to play a significant role in the upcoming smart distributed energy network development due to their contribution of on-site electrical generation through solar photovoltaic systems, energy storage, demand side management etc. In order to increase further PV penetration within the distribution network and develop innovative mitigation techniques, there is critical need of further field-oriented research in the above-mentioned topics.
This Special Issue of AIMS Energy Journal comprises peer-review articles on advancement of power dispatching techniques for solar photovoltaic system with energy storage, shading and diffused solar radiation effects on the performance of solar photovoltaic system, intelligent controllers for distributed energy resources allocations, material characterization for heterojunction solar cells. In addition, some articles cover the typical case studies of solar photovoltaic systems in the tropical region.
As the Guest Editor of this Special Issue ‘Solar Photovoltaic System Engineering’ of the AIMS Energy Journal, I express my sincere appreciation to the journal editorial team, authors and reviewers of the manuscripts, journal editorial supporting team, and all those who have contributed and supported in successful fruition and publication.
Professor Mohan Lal Kolhe
Professor in Smart Grid and Renewable Energy
Faculty of Engineering and Science,
University of Agder,
PO Box 422, NO 4604, Kristiansand, Norway
E-mail: Mohan.L.Kolhe@uia.no
[1] | Furukawa T (2016) Printing technology for electronics. International Conference on Electronics Packaging (ICEP), Japan. |
[2] |
Sekine C, Tsubata Y, Yamada T, et al. (2014) Recent progress of high performance polymer OLED and OPV materials for organic printed electronics. Sci Technol Adv Mat 15: 34203. doi: 10.1088/1468-6996/15/3/034203
![]() |
[3] | Cui Z, Zhou C, Qiu S, et al. (2016) Printed Electronics: Materials, Technologies and Applications. China: Wiley - Higher Education Press. |
[4] | Sridhar A, Blaudeck T and Baumann RR (2011) Inkjet Printing as a Key Enabling Technology for Printed Electronics. Material Matters 6: 12–15. |
[5] |
Happonen T, Häkkinen J, Fabritius T, et al. (2015) Cyclic Bending Reliability of Silk Screen Printed Silver Traces on Plastic and Paper Substrates. IEEE T Device Mat Re 15: 394–401. doi: 10.1109/TDMR.2015.2457231
![]() |
[6] | Vaithilingam J, Saleh E, Tuck C, et al. (2015) 3D-inkjet Printing of Flexible and Strechable Electroncis, Additive Manufacturing and 3D Printing Research Group, Faculty of Engineering, University of Nottingham, Nottingham. |
[7] | Paine DC, Yeom H-Y and Yaglioglu B (2005) Transparent Conducting Oxide Materials and Technology. Flexible Flat Panel Displays, Chichester, John Wiley & Sons. |
[8] | Elschner A, Kirchmeyer S, Lövenich W, et al. (2010) PEDOT: Principles and Applications of an Intrinsically Conductive Polymer, USA, Taylor & Francis. |
[9] |
Chen S, Song L, Tao Z, et al. (2014) Neutral-pH PEDOT: PSS as over-coating layer for stable silver nanowire flexible transparent conductive films. Org Electron 15: 3654–3659. doi: 10.1016/j.orgel.2014.09.047
![]() |
[10] | Novacentrix: Pulseforge®1200 [Internet]. Available from: http://www.novacentrix.com/products/pulseforge/1200. |
[11] | Meyer Burger: PiXDRO LP50 [Internet] [cited 2016]. Available from: https://www.meyerburger.com/de/en/technologies/specialized-technologies/inkjet-printing/product-detail/product/pixdro-lp50/. |
[12] |
Sowade E, Kang H, Mitre KY, et al. (2015) Roll-to-roll infrared (IR) drying and sintering of an inkjet-printed silver nanoparticle ink within 1 second. J Mater Chem C 3: 11815–11826. doi: 10.1039/C5TC02291F
![]() |
[13] |
Chen S-P, Chiu H-L, Wang P-H, et al. (2015) Inkjet Printed Conductive Tracks for Printed Electronics. ECS J Solid State Sc 4: 3026–3033. doi: 10.1149/2.0061504jss
![]() |
[14] |
Park M, Im J, Shin M, et al. (2012) Highly stretchable electric circuits from a composite material of silver nanoparticles and elastomeric fibres. Nat Nanotechnol 7: 803–809. doi: 10.1038/nnano.2012.206
![]() |
[15] |
Shen W, Zhang X, Huang Q, et al. (2014) Preparation of solid silver nanoparticles for inkjet printed flexible electronics with high conductivity. Nanoscale 6: 1622–1628. doi: 10.1039/C3NR05479A
![]() |
[16] |
Zheng Y, He Z, Gao Y, et al. (2013) Direct Desktop Printed-Circuits-on-Paper Flexible Electronics. Sci Rep-UK 3: 1786. doi: 10.1038/srep01786
![]() |
[17] |
McCoul D, Hu W, Gao M, et al. (2016) Recent Advances in Stretchable and Transparent Electronic Materials. Adv Electron Mater 2: 1500407. doi: 10.1002/aelm.201500407
![]() |
[18] | Switch CM: Cixi Membrane Switch Factory [Internet] [cited 2016]. Available from: http://www.cnjunma.com/polydome-membrane-switch.htm. |
[19] | Snaptron: Quality [Internet] [cited 2016]. Available from: http://www.snaptron.com/quality/. |
[20] | Sommer L (2017) A concept to optimized mechanical stability and resistance of low-cost inject-printed silver ink tracks by combination of different conductive inks. Far East Journal of Electronics and Communications: 301–315. |
[21] | Sommer L, Skopek D (2018) Rapid Prototyping of Flexible Printed Circuits and Printed Membrane Switches. Journal of Materials Science & Surface Engineering: 739–742. |
[22] | Sommer L, Kessler C (2017) Conductive Atomic Force Microscopy Analysis of Double Layer Inkjet Printed Electronic Structures (C-AFM). International Journal of Science and Engineering Investigations 6: 41–46. |
[23] | Ramachandran RP, Sommer L (2018) Printed Inductive Coil Realized using Inkjet Printing on Flexible Substrate for RFID Technology Applications. International Journal of Science Technology & Engineering 4: 29–33. |
[24] | AgIC: circuit-printer-cartridge-set [Internet] [cited 2016]. Available from: https://shop.agic.cc/products/circuit-printer-cartridge-set. |
[25] | Schäfer, Testanlage, Deutschland: Schäfer GmbH, 2016. |
[26] | Vötsch: VC³4018 [Internet] [cited 2016] Available from: http://www.v-it.com/de. |