A comprehensive review on dust removal using electrodynamic shield: Mechanism, influencing factors, performance, and progress
暂无分享,去创建一个
[1] H. Bouzekri,et al. Assessment of dry and wet cleaning of aluminum mirrors toward water consumption reduction , 2023, Renewable Energy.
[2] B. Khoshnevisan,et al. Effect of electrode design and dust particle size on electrodynamics dust shield procedure , 2022, Physics Open.
[3] R. Shenouda,et al. Mitigation of dust on PV panels that operate light posts using a wind shield, mechanical vibrations and AN antistatic coating , 2022, Ain Shams Engineering Journal.
[4] K. Varanasi,et al. Electrostatic dust removal using adsorbed moisture–assisted charge induction for sustainable operation of solar panels , 2022, Science advances.
[5] M. S. Abd-Elhady,et al. A novel technique for cleaning PV panels using antistatic coating with a mechanical vibrator , 2020 .
[6] H. Kawamoto. Improved detachable electrodynamic cleaning system for dust removal from soiled photovoltaic panels , 2020, Journal of Electrostatics.
[7] N. Zouzou,et al. Study of dielectric particles motion in traveling and standing electrostatic waves using particle tracking velocimetry , 2020, Journal of Physics D: Applied Physics.
[8] W. Javed,et al. Effect of relative humidity on dust removal performance of electrodynamic dust shield , 2020 .
[9] B. Khoshnevisan,et al. Enhancement of the electric field in electrodynamic screen using helix electrodes , 2019, Optik.
[10] W. Javed,et al. Solar PV soiling mitigation by electrodynamic dust shield in field conditions , 2019, Solar Energy.
[11] B. Guo,et al. Dust removal from solar concentrators using an electrodynamic screen , 2019, Solar Energy.
[12] Yusuf Bicer,et al. Assessment of Various Dry Photovoltaic Cleaning Techniques and Frequencies on the Power Output of CdTe-Type Modules in Dusty Environments , 2019, Sustainability.
[13] W. Javed,et al. Effect of Voltage Rise Time on the Efficiency of Electrodynamic Dust Shield , 2019, IEEE Journal of Photovoltaics.
[14] B. Guo,et al. Numerical analysis of the effects of particle-particle interactions and particle size on the performance of an electrodynamic dust shield , 2019, Journal of Electrostatics.
[15] M. Mazumder,et al. Development of Hybrid Structures of Silver Nanowire Electrodes for the Electrodynamic Screen (EDS) Films to Mitigate Energy Yield Loss Incurred by Solar Collectors Due to Soiling , 2019, MRS Advances.
[16] W. Javed,et al. Measurement of electrodynamic dust shield efficiency in field conditions , 2019, Journal of Electrostatics.
[17] W. Javed,et al. Electrodynamic dust shield performance under simulated operating conditions for solar energy applications , 2018, Solar Energy Materials and Solar Cells.
[18] H. Kawamoto,et al. Practical performance of an electrostatic cleaning system for removal of lunar dust from optical elements utilizing electrostatic traveling wave , 2018, Journal of Electrostatics.
[19] Yike Tang,et al. Criteria for particles to be levitated and to move continuously on traveling-wave electric curtain for dust mitigation on solar panels , 2018 .
[20] Hiroyuki Kawamoto,et al. Improvement of an electrostatic cleaning system for removal of dust from solar panels , 2018 .
[21] Bimal K. Bose,et al. Artificial Intelligence Techniques in Smart Grid and Renewable Energy Systems—Some Example Applications , 2017, Proceedings of the IEEE.
[22] B. Guo,et al. Simulation of microscale particle interactions for optimization of an electrodynamic dust shield to clean desert dust from solar panels , 2017 .
[23] Karim Menoufi,et al. Dust accumulation on photovoltaic panels: a case study at the East Bank of the Nile (Beni-Suef, Egypt) , 2017 .
[24] W. Suwaileh,et al. Improved Self-cleaning Properties of an Efficient and Easy to Scale up TiO2 Thin Films Prepared by Adsorptive Self-Assembly , 2017, Scientific Reports.
[25] Leora Peltz,et al. Proof of concept demonstration of novel technologies for lunar spacesuit dust mitigation , 2017 .
[26] N. Joglekar,et al. Mitigation of Dust Impact on Solar Collectors by Water-Free Cleaning With Transparent Electrodynamic Films: Progress and Challenges , 2017, IEEE Journal of Photovoltaics.
[27] D. Shindell,et al. Large Reductions in Solar Energy Production Due to Dust and Particulate Air Pollution , 2017 .
[28] A. Sayyah,et al. An experimental study on the characterization of electric charge in electrostatic dust removal , 2017 .
[29] A. Shehri,et al. Accelerated testbed for studying the wear, optical and electrical characteristics of dry cleaned PV solar panels , 2017 .
[30] Brian Parrott,et al. Impact of dust deposition and brush-based dry cleaning on glass transmittance for PV modules applications , 2016 .
[31] B. Figgis,et al. Microstructural analysis of the cementation process during soiling on glass surfaces in arid and semi‐arid climates , 2016 .
[32] A. Sayyah,et al. Electrostatic force distribution on an electrodynamic screen , 2016 .
[33] Mohd Amran Mohd Radzi,et al. Power loss due to soiling on solar panel: A review , 2016 .
[34] M. Horenstein,et al. Development of Transparent Electrodynamic Screens on Ultrathin Flexible Glass Film Substrates for Retrofitting Solar Panels and Mirrors for Self-Cleaning Function , 2016 .
[35] K. Kim,et al. Properties of Silver Nanowire/Zinc Oxide Transparent Bilayer Thin Films for Optoelectronic Applications. , 2015, Journal of Nanoscience and Nanotechnology.
[36] J. Gaier,et al. Review of dust transport and mitigation technologies in lunar and Martian atmospheres , 2015 .
[37] Jianren Fan,et al. Numerical simulation of temperature effect on particles behavior via electrostatic precipitators , 2015 .
[38] Guangming Wu,et al. Further Study of Electric Dust Removal with Transparent Fork Electrodes , 2015 .
[39] Guangming Wu,et al. Study of Dust Removal by Transparent Fork Electrodes , 2014 .
[40] H. O. Fatoyinbo,et al. Efficient dielectrophoretic cell enrichment using a dielectrophoresis-well based system. , 2013, Biomicrofluidics.
[41] Qi Zhang,et al. A linear piezoelectric actuator based solar panel cleaning system , 2013 .
[42] Johan Driesen,et al. Effect of soiling on photovoltaic modules , 2013 .
[43] H. Kawamoto,et al. Electrostatic cleaning system for removal of sand from solar panels , 2013, 2013 IEEE 39th Photovoltaic Specialists Conference (PVSC).
[44] Malay K. Mazumder,et al. Predicting particle trajectories on an electrodynamic screen – Theory and experiment , 2013 .
[45] Lawrence L. Kazmerski,et al. A comprehensive review of the impact of dust on the use of solar energy: History, investigations, results, literature, and mitigation approaches , 2013 .
[46] J. Marshall,et al. Simulation of Particle Separation on an Inclined Electric Curtain , 2013, IEEE Transactions on Industry Applications.
[47] Y. Cohen,et al. Strong, Light, Multifunctional Fibers of Carbon Nanotubes with Ultrahigh Conductivity , 2013, Science.
[48] G. Hu,et al. Mechanism of dust removal by a standing wave electric curtain , 2012 .
[49] Aaron J. Danner,et al. A practical superhydrophilic self cleaning and antireflective surface for outdoor photovoltaic applications , 2012 .
[50] Malay K. Mazumder,et al. Characterization of Electrodynamic Screen Performance for Dust Removal from Solar Panels and Solar Hydrogen Generators , 2011, IEEE Transactions on Industry Applications.
[51] Malay K. Mazumder,et al. Modeling of Trajectories in an Electrodynamic Screen for Obtaining Maximum Particle Removal Efficiency , 2011, IEEE Transactions on Industry Applications.
[52] Hiroyuki Kawamoto,et al. Electrostatic cleaning system for removing lunar dust adhering to space suits , 2011 .
[53] Hai Jiang,et al. Experimental investigation of the impact of airborne dust deposition on the performance of solar photovoltaic (PV) modules , 2011 .
[54] Hiroyuki Kawamoto,et al. Mitigation of lunar dust on solar panels and optical elements utilizing electrostatic traveling-wave , 2011 .
[55] Hiroyuki Kawamoto,et al. Mitigation of lunar dust adhered to mechanical parts of equipment used for lunar exploration , 2011 .
[56] A. Mellit,et al. The effect of soiling on energy production for large-scale photovoltaic plants , 2011 .
[57] Maesoon Im,et al. Self-cleaning effect of highly water-repellent microshell structures for solar cell applications , 2011 .
[58] Rohit Pillai,et al. Impact of dust on solar photovoltaic (PV) performance: Research status, challenges and recommendations , 2010 .
[59] W. Hwang,et al. Characteristics and self-cleaning effect of the transparent super-hydrophobic film having nanofibers array structures , 2010 .
[60] Jeffrey S. Marshall,et al. Particle transport by standing waves on an electric curtain , 2010 .
[61] Jeffrey S. Marshall,et al. Effect of particle adhesion and interactions on motion by traveling waves on an electric curtain , 2010 .
[62] Keith M. Forward,et al. Particle‐size dependent bipolar charging of Martian regolith simulant , 2009 .
[63] Carlos I. Calle,et al. Particle removal by electrostatic and dielectrophoretic forces for dust control during lunar exploration missions , 2009 .
[64] N. Mardesich,et al. Experimental Evaluation and Analysis of Electrodynamic Screen as Dust Mitigation Technology for Future Mars Missions , 2009, IEEE Transactions on Industry Applications.
[65] Malay K. Mazumder,et al. Controlled particle removal from surfaces by electrodynamic methods for terrestrial, lunar, and Martian environmental conditions , 2008 .
[66] Hiroyuki Kawamoto,et al. Some techniques on electrostatic separation of particle size utilizing electrostatic traveling-wave field , 2008 .
[67] M. Zahn,et al. Self-Cleaning Transparent Dust Shields for Protecting Solar Panels and Other Devices , 2007 .
[68] P. Atten,et al. Study of Dust Removal by Standing-Wave Electric Curtain for Application to Solar Cells on Mars , 2005, IEEE Transactions on Industry Applications.
[69] Hiroyuki Kawamoto,et al. Mechanism of travelling-wave transport of particles , 2004, NIP & Digital Fabrication Conference.
[70] H. Kawamoto,et al. Traveling Wave Transport of Particles and Particle Size Classification , 2003, Journal of Imaging Science and Technology.
[71] Brij M Moudgil,et al. Capillary forces between surfaces with nanoscale roughness. , 2002, Advances in colloid and interface science.
[72] M. Mazumder,et al. Effects of surface properties on the tribocharging characteristics of polymer powder as applied to industrial processes , 2001, Conference Record of the 2001 IEEE Industry Applications Conference. 36th IAS Annual Meeting (Cat. No.01CH37248).
[73] T. Minami. New n-Type Transparent Conducting Oxides , 2000 .
[74] M. Onozuka,et al. Development of dust removal system using static electricity for fusion experimental reactors , 1997 .
[75] T. Higuchi,et al. Electrostatic devices for particle micro-handling , 1995, IAS '95. Conference Record of the 1995 IEEE Industry Applications Conference Thirtieth IAS Annual Meeting.
[76] Fred W Schmidlin,et al. Modes of traveling wave particle transport and their applications , 1995 .
[77] Yuji Ikegami,et al. Electrodynamical control of bubbles in dielectric liquid using a non-uniform travelling field , 1993 .
[78] James R. Melcher,et al. Theory for finite-phase traveling-wave boundary-guided transport of triboelectrified particles , 1989 .
[79] James R. Melcher,et al. Traveling-wave delivery of single-component developer , 1989 .
[80] F.W. Schmidlin,et al. A new nonlevitated mode of traveling wave toner transport , 1988, Conference Record of the 1988 IEEE Industry Applications Society Annual Meeting.
[81] Masahiro Iwadare,et al. Separation of Small Particles Suspended in Liquid by Nonuniform Traveling Field , 1987, IEEE Transactions on Industry Applications.
[82] M. Washizu,et al. Movement of Blood Cells in Liquid by Non-Uniform Travelling Field , 1986, 1986 Annual Meeting Industry Applications Society.
[83] M. Onsa,et al. A brief summary of cleaning operations and their effect on the photovoltaic performance in Africa and the Middle East , 2022, Energy Reports.
[84] W. Javed,et al. Efficiency of Electrodynamic Dust Shield at Dust Loading Levels Relevant to Solar Energy Applications , 2018, IEEE Journal of Photovoltaics.
[85] A. Sayyah,et al. Performance Analysis of Electrodynamic Screens Based on Residual Particle Size Distribution , 2017, IEEE Journal of Photovoltaics.
[86] Zeki Ahmed Darwish,et al. Effect of dust pollutant type on photovoltaic performance , 2015 .
[87] Felipe A. Mejia,et al. The Effect of Dust on Solar Photovoltaic Systems , 2014 .
[88] A. S. Biris,et al. Paper Session II-A - Electrodynamic Shield to Remove Dust from Solar Panels on Mars , 2004 .
[89] Y. Matsumoto,et al. Theoretical characteristics of standing-wave electric curtains , 1973 .
[90] K. Ishida,et al. Confinement and transportation of charged aerosol clouds via electric curtain , 1972 .