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Auswahl der wissenschaftlichen Literatur zum Thema „Solar simulation and experimentation“
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Zeitschriftenartikel zum Thema "Solar simulation and experimentation"
Ghabuzyan, Levon, Kevin Pan, Arianna Fatahi, Jim Kuo und Christopher Baldus-Jeursen. „Thermal Effects on Photovoltaic Array Performance: Experimentation, Modeling, and Simulation“. Applied Sciences 11, Nr. 4 (05.02.2021): 1460. http://dx.doi.org/10.3390/app11041460.
Der volle Inhalt der QuelleKareem, M. W., Khairul Habib und S. I. Gilani. „Lumped Components Modeling of Double Pass Solar Collector with Porous Matrixes“. Applied Mechanics and Materials 465-466 (Dezember 2013): 216–20. http://dx.doi.org/10.4028/www.scientific.net/amm.465-466.216.
Der volle Inhalt der QuelleSuresh Babu, G., B. Prem Charan und T. Murali Krishna. „Performance Analysis of SPV Module Using Solar PVTR System“. International Journal of Engineering & Technology 7, Nr. 3.3 (21.06.2018): 68. http://dx.doi.org/10.14419/ijet.v7i3.3.14488.
Der volle Inhalt der QuelleT R, Mohan Kumar, P. V. Srihari und M. S. Krupashankara. „Simulation and Optimization of Coating thickness for Absorptance and Reflectance in Multilayered Thin Films“. International Journal of ChemTech Research 13, Nr. 4 (2020): 364–73. http://dx.doi.org/10.20902/ijctr.2019.130405.
Der volle Inhalt der QuelleChenchireddy, Kalagotla, Khammampati R. Sreejyothi, Podishetti Ganesh, Gatla Uday Kiran, Chilukuri Shiva und Banoth Nithish Kumar. „Fundamental frequency switching strategies of a seven level hybrid cascaded H-bridge multilevel inverter“. International Journal of Applied Power Engineering (IJAPE) 13, Nr. 2 (01.06.2024): 263. http://dx.doi.org/10.11591/ijape.v13.i2.pp263-268.
Der volle Inhalt der QuelleOrdaz Castillo, Job, Hector D. Garcia-Lara, Nilda Gabriela Trejo-Luna und Santos Mendez-Diaz. „An open-loop control algorithm for improved tracking in a heliostat“. Renewable energy, biomass & sustainability 6, Nr. 1 (11.04.2024): 50–56. http://dx.doi.org/10.56845/rebs.v6i1.90.
Der volle Inhalt der QuelleHarmim, A., M. Boukar, M. Amar und Aek Haida. „Simulation and experimentation of an integrated collector storage solar water heater designed for integration into building facade“. Energy 166 (Januar 2019): 59–71. http://dx.doi.org/10.1016/j.energy.2018.10.069.
Der volle Inhalt der QuelleOuédraogo, Salifou, Thierry S. M. Ky, Amadou Konfé, Sié Kam und D. Joseph Bathiébo. „Expérimentation et analyse thermique d’un concentrateur hémisphérique stationnaire sous les conditions climatiques à Ouagadougou, Burkina Faso“. Journal de Physique de la SOAPHYS 2, Nr. 1b (05.03.2021): C20A04–1—C20A04–1. http://dx.doi.org/10.46411/jpsoaphys.2020.01.04.
Der volle Inhalt der QuelleReveles-Miranda, María, Diego Sánchez-Flórez, José Cruz-Chan, Eduardo Ordoñez-López, Manuel Flota-Bañuelos und Daniella Pacheco-Catalán. „The Control Scheme of the Multifunction Inverter for Power Factor Improvement“. Energies 11, Nr. 7 (26.06.2018): 1662. http://dx.doi.org/10.3390/en11071662.
Der volle Inhalt der QuelleGokhale, Hrishikesh, und Lochan Chaudhari. „Eco-Friendly and Renewable Power Generation from Heat Using Thermophotovoltaic Technology“. ECS Transactions 107, Nr. 1 (24.04.2022): 14641–54. http://dx.doi.org/10.1149/10701.14641ecst.
Der volle Inhalt der QuelleDissertationen zum Thema "Solar simulation and experimentation"
Fasquelle, Thomas. „Modélisation et caractérisation expérimentale d’une boucle solaire cylindro-parabolique intégrant un stockage de type thermocline“. Thesis, Perpignan, 2017. http://www.theses.fr/2017PERP0040/document.
Der volle Inhalt der QuelleLike other renewable energy technologies, concentrated solar power (CSP) suffers from resource intermittence. Thermocline technology is a promising solution to decrease cost of thermal energy storage in CSP plants. Thermocline behavior has thoroughly been studied in the past years and its behavior is considered well known. However no study treated of thermocline tanks integrated in CSP plants. Thus, the impact of the varying outlet temperature of the thermocline storage has not been assessed yet. This work aims to fill this lack of knowledge by studying a mini parabolic trough power plant integrating a thermocline tank as storage.First, the compatibility between the heat transfer fluid of the plant (synthetic oil) and various potential filler materials (Cofalit, coal fly ash bricks, alumina) of the storage tank is verified. Then, some performance studies are performed on the three main components of the power plant (energy storage tank, solar collectors, steam generator). Finally, the behavior of the whole system is assessed, with a focus on the impact of the varying fluid temperature at the outlet of the thermocline tank on the other components.It has been shown that, with a proper sizing and an appropriate control strategy, thermocline technology induces very low decrease of the solar power plant performance in comparison to the conventional two tank technology (maximum 3-4% of electrical power production difference)
Koninck, Corentin. „Procédés solaires basse température pour la désinfection d'eau de surface“. Electronic Thesis or Diss., Perpignan, 2024. https://theses.hal.science/tel-04867589.
Der volle Inhalt der QuelleDifficulties in accessing drinking water affect the daily lives of 2 billion people, and represent a major problem to be solved. The 6th Sustainable Development Goal, set by the United Nations, aims to promote universal access to drinking water by developing sanitation and potabilization facilities in urban areas, and in isolated sites. The latter are characterized by the absence of energy networks, the scarcity of qualified technical personnel and the difficulty of transporting raw materials. The development of decentralized, sustainable, energy-independent processes meets the need to treat water against microbiological pollution, the cause of many deaths worldwide. Two processes, using low-temperature solar thermal energy as an energy source, and based respectively on the principle of water pasteurization and membrane ultrafiltration, are being designed, tested and modelled. The aim of this project is to demonstrate the feasibility of disinfecting surface water on the scale of small decentralized communities, using energy supplied by standard flat-plate thermal collectors. Depending on irradiation conditions, the solar pasteurization process developed can treat daily volumes of between 800 and 1000 L per collector unit (2 m2 surface area). Specific solar energy consumption, optimized through the use of a high-performance heat exchanger positioned on the open treatment loop, varies between 12 and 15 kWhsol.m-3. It operates completely autonomously with the sun, using a passive control system. The ultrafiltration process is based on two innovations: (i) the production of the mechanical energy required to operate the membrane system by an organic Rankine thermodynamic cycle whose heat input is supplied by a solar collector; (ii) the use of mechanical energy to pump and pressurize the water by actuating a double-acting cylinder. The technical feasibility of the process has been verified, with specific energy consumption fluctuating between 5 and 10 kWhsol.m-3. In both cases, modelling is carried out and validated on the basis of experimental results. By coupling the two technologies, it is possible to generate the permeate required for drinking water, and to disinfect the concentrate using the pasteurization process. This disinfection system combines energy efficiency with zero waste
Yang, Clara Chih-Chieh. „Web dynamics : modeling, simulation, and experimentation“. Thesis, Massachusetts Institute of Technology, 1996. http://hdl.handle.net/1721.1/38153.
Der volle Inhalt der QuelleCukalovic, Boris. „MIT integrated microelectronics device experimentation and simulation iLab“. Thesis, Massachusetts Institute of Technology, 2006. http://hdl.handle.net/1721.1/36776.
Der volle Inhalt der QuelleIncludes bibliographical references (p. 57-58).
We developed the MIT Integrated Microelectronics Device Experimentation and Simulation iLab, a new online laboratory that combines and significantly upgrades the capabilities of two existing online microelectronics labs: WebLab, a device characterization lab, and WebLabSim, a device simulation lab. The new integrated tool allows users to simultaneously run experiments on actual devices and simulations on the virtual ones, as well as to compare the results of the two. In order to achieve this, we considerably extended the capabilities of the original clients. We added the ability to graph the results of multiple experiments and simulations simultaneously, on top of each other, which allows for much easier comparison. We also added the ability to load, view and graph the results of experiments and simulations that were ran at any point in the past, even when the corresponding lab configurations are no longer available. Our hope is that this new integrated iLab will enrich microelectronics teaching and learning by allowing students to compare real life device behavior with theoretical expectations.
by Boris Cukalovic.
M.Eng.
Z'Graggen, Andreas. „Solar gasification of carbonaceous materials : reactor design, modeling and experimentation /“. kostenfrei, 2008. http://e-collection.ethbib.ethz.ch/view/eth:30596.
Der volle Inhalt der QuelleJin, Qiang. „SimGest: A simulation experimentation environment and a program generator for interactive simulation“. Thesis, University of Ottawa (Canada), 1994. http://hdl.handle.net/10393/6844.
Der volle Inhalt der QuelleLeidig, Jonathan Paul. „Epidemiology Experimentation and Simulation Management through Scientific Digital Libraries“. Diss., Virginia Tech, 2012. http://hdl.handle.net/10919/28759.
Der volle Inhalt der QuellePh. D.
Wagner, Albert W. „Electrochemical facilitated transport: a study in synthesis, simulation and experimentation“. Diss., Virginia Tech, 1995. http://hdl.handle.net/10919/39106.
Der volle Inhalt der QuelleSchunk, Lothar Oliver. „Solar thermal dissociation of zinc oxide : reaction kinetics, reactor design, experimentation, and modeling /“. Zürich : ETH, 2008. http://e-collection.ethbib.ethz.ch/show?type=diss&nr=18041.
Der volle Inhalt der QuelleXu, Yijia. „A SIMULATION PLATFORM FOR EXPERIMENTATION AND EVALUATION OF DISTRIBUTED-COMPUTING SYSTEMS“. Diss., Tucson, Arizona : University of Arizona, 2005. http://etd.library.arizona.edu/etd/GetFileServlet?file=file:///data1/pdf/etd/azu%5Fetd%5F1229%5F1%5Fm.pdf&type=application/pdf.
Der volle Inhalt der QuelleBücher zum Thema "Solar simulation and experimentation"
Mabie, Kevin T. Solar simulation laboratory description and manual. Monterey, Calif: Naval Postgraduate School, 1985.
Den vollen Inhalt der Quelle findenB, Moldwin M., Akasofu Syun-Ichi und United States. National Aeronautics and Space Administration., Hrsg. Simulation of January 1-7, 1978 events. [Washington, DC: National Aeronautics and Space Administration, 1987.
Den vollen Inhalt der Quelle findenPerers, Bengt. Simulation and evaluation methods for solar energy systems. Stockholm, Sweden: Swedish Council for Building Research, 1990.
Den vollen Inhalt der Quelle findenYamaguchi, Masafumi, und Laurentiu Fara. Advanced solar cell materials, technology, modeling, and simulation. Hershey PA: Engineering Science Reference, 2012.
Den vollen Inhalt der Quelle findenDutré, W. L. A European transient simulation model for thermal solar systems, EMGP2. Dordrecht, Holland: D. Reidel Pub. Co. for the Commission of the European Communities, 1985.
Den vollen Inhalt der Quelle findenBabin, Thomas S. Designing a new factory with manufacturing simulation and planned experimentation. Reading, Mass: Addison-Wesley, 1993.
Den vollen Inhalt der Quelle findenDutré, W. L. Simulation of water based thermal solar systems: EURSOL, an interactive program. Dordrecht: Kluwer Academic Publishers, 1991.
Den vollen Inhalt der Quelle findenEngler, Kevin P. Animal-related computer simulation programs for use in education and research. Beltsville, Md: National Agricultural Library, 1989.
Den vollen Inhalt der Quelle findenThornton, Mark Edward. Object-orientated simulation of passive solar energy use in buildings. Birmingham: University of Birmingham, 1997.
Den vollen Inhalt der Quelle findenBerube, R. H. Learning electronics communications through experimentation using Electronics workbench multisim. Upper Saddle River, N.J: Prentice Hall, 2002.
Den vollen Inhalt der Quelle findenBuchteile zum Thema "Solar simulation and experimentation"
Greasley, Andrew. „Experimentation“. In Simulation Modelling, 241–57. London: Routledge, 2022. http://dx.doi.org/10.4324/9781003124092-18.
Der volle Inhalt der QuelleGreasley, Andrew. „Experimentation“. In Simulation Modelling, 281–97. London: Routledge, 2022. http://dx.doi.org/10.4324/9781003124092-22.
Der volle Inhalt der QuelleFilzmoser, Michael. „Experimentation“. In Simulation of Automated Negotiation, 115–31. Vienna: Springer Vienna, 2010. http://dx.doi.org/10.1007/978-3-7091-0133-9_5.
Der volle Inhalt der QuelleRobinson, Stewart. „Experimentation: Obtaining Accurate Results“. In Simulation, 166–99. London: Macmillan Education UK, 2014. http://dx.doi.org/10.1007/978-1-137-32803-8_9.
Der volle Inhalt der QuelleÖren, Tuncer, Paul K. Davis, Rhys Goldstein, Azam Khan, Laurent Capocchi, Maâmar El-Amine Hamri, Navonil Mustafee et al. „Simulation as Experimentation“. In Simulation Foundations, Methods and Applications, 77–119. Cham: Springer International Publishing, 2023. http://dx.doi.org/10.1007/978-3-031-11085-6_3.
Der volle Inhalt der QuelleRobinson, Stewart. „Experimentation: Searching the Solution Space“. In Simulation, 200–240. London: Macmillan Education UK, 2014. http://dx.doi.org/10.1007/978-1-137-32803-8_10.
Der volle Inhalt der QuelleBirta, Louis G., und Gilbert Arbez. „Experimentation and Output Analysis“. In Modelling and Simulation, 241–66. London: Springer London, 2013. http://dx.doi.org/10.1007/978-1-4471-2783-3_7.
Der volle Inhalt der QuelleBirta, Louis G., und Gilbert Arbez. „Experimentation and Output Analysis“. In Modelling and Simulation, 235–79. Cham: Springer International Publishing, 2019. http://dx.doi.org/10.1007/978-3-030-18869-6_7.
Der volle Inhalt der QuelleEwald, Roland. „Experimentation Methodology“. In Automatic Algorithm Selection for Complex Simulation Problems, 203–46. Wiesbaden: Vieweg+Teubner Verlag, 2012. http://dx.doi.org/10.1007/978-3-8348-8151-9_7.
Der volle Inhalt der QuelleGriffith, Daniel A. „Simulation Experimentation in Spatial Analysis“. In Advanced Studies in Theoretical and Applied Econometrics, 225–60. Dordrecht: Springer Netherlands, 1988. http://dx.doi.org/10.1007/978-94-009-2758-2_9.
Der volle Inhalt der QuelleKonferenzberichte zum Thema "Solar simulation and experimentation"
Adhau, S. P., R. M. Moharil, V. S. Rajguru und Mrunmayee Gujar Pradhan. „Study and Analysis of Solar Photo Voltaic Modules with Real Time Experimentation on Solar Simulator/Solar Emulator“. In 2022 International Conference on Electrical, Computer and Energy Technologies (ICECET). IEEE, 2022. http://dx.doi.org/10.1109/icecet55527.2022.9872753.
Der volle Inhalt der QuelleFrederickson, Lee, Mario Leoni und Fletcher Miller. „Carbon Particle Generation and Lab-Scale Small Particle Heat Exchange Receiver Experimentation and Modeling“. In ASME 2014 8th International Conference on Energy Sustainability collocated with the ASME 2014 12th International Conference on Fuel Cell Science, Engineering and Technology. American Society of Mechanical Engineers, 2014. http://dx.doi.org/10.1115/es2014-6640.
Der volle Inhalt der QuelleBharambe, Ganesh, A. M. Patil, Sandip Kale, Kumar Digambar Sapate und Prakash Dabeer. „Simulation of Heat Flux Between Two Parallel Metal Plates With Thermic Fluid as a Media“. In ASME 2015 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2015. http://dx.doi.org/10.1115/imece2015-53449.
Der volle Inhalt der QuelleHossei, Hamideh, und Kyoung-hee Kim. „Circuit Connection Reconfiguration Of Partially Shaded BIPV Systems, A Solution For Power Loss Reduction“. In 111th ACSA Annual Meeting Proceedings. ACSA Press, 2023. http://dx.doi.org/10.35483/acsa.am.111.7.
Der volle Inhalt der QuelleSchunk, L. O., P. Haeberling, S. Wepf, D. Wuillemin, A. Meier und A. Steinfeld. „A Rotary Receiver-Reactor for the Solar Thermal Dissociation of Zinc Oxide“. In ASME 2007 Energy Sustainability Conference. ASMEDC, 2007. http://dx.doi.org/10.1115/es2007-36078.
Der volle Inhalt der QuelleTerres, Hilario, Sandra Chavez, Raymundo Lopez, Arturo Lizardi und Araceli Lara. „Evaluation of Heating Process of Apple, Eggplant, Zucchini and Potato by Means of Their Thermal Properties“. In ASME 2016 Heat Transfer Summer Conference collocated with the ASME 2016 Fluids Engineering Division Summer Meeting and the ASME 2016 14th International Conference on Nanochannels, Microchannels, and Minichannels. American Society of Mechanical Engineers, 2016. http://dx.doi.org/10.1115/ht2016-7140.
Der volle Inhalt der QuelleFong, Tessa. „Erosion Experimentation in Solar Power Systems“. In C3E Poster Competition for the US C3E Symposium, online/virtual, December 8-9 2020. US DOE, 2020. http://dx.doi.org/10.2172/1754990.
Der volle Inhalt der QuelleHunter, D'Mark, und Dale Joachim. „DF Experimentation through Parametric Simulation“. In 2006 International Conference on Computer Engineering and Systems. IEEE, 2006. http://dx.doi.org/10.1109/icces.2006.320430.
Der volle Inhalt der QuelleKruger, Daniela, Carsten Buschmann und Stefan Fischer. „Solar powered sensor network design and experimentation“. In 2009 6th International Symposium on Wireless Communication Systems (ISWCS 2009). IEEE, 2009. http://dx.doi.org/10.1109/iswcs.2009.5285339.
Der volle Inhalt der QuelleCheu, Darrell S., Thomas E. Adams und Shripad T. Revankar. „Derivation of Critical Parameters of Betavoltaics“. In 2018 26th International Conference on Nuclear Engineering. American Society of Mechanical Engineers, 2018. http://dx.doi.org/10.1115/icone26-81109.
Der volle Inhalt der QuelleBerichte der Organisationen zum Thema "Solar simulation and experimentation"
Kelly, David, Garth Heutel, Juan Moreno-Cruz und Soheil Shayegh. Solar Geoengineering, Learning, and Experimentation. Cambridge, MA: National Bureau of Economic Research, Februar 2021. http://dx.doi.org/10.3386/w28442.
Der volle Inhalt der QuelleFikus, John. Global Information Enterprise Simulation (GIESIM) Joint Tactical Information Distribution Systems Simulation Experimentation. Fort Belvoir, VA: Defense Technical Information Center, August 2005. http://dx.doi.org/10.21236/ada438999.
Der volle Inhalt der QuellePatel, Lekha, John Zenker, Christian Pattyn, Pierce Warburton, Kurtis Shuler, Lucas McMichael, Peter Blossey et al. Pluminate: Quantifying aerosol injection behavior from simulation, experimentation and observations. Office of Scientific and Technical Information (OSTI), November 2023. http://dx.doi.org/10.2172/2430132.
Der volle Inhalt der QuelleSanz, Asier`. Numerical simulation tools for PVT collectors and systems. IEA SHC Task 60, September 2020. http://dx.doi.org/10.18777/ieashc-task60-2020-0006.
Der volle Inhalt der QuelleTaveres-Cachat, Ellika Ellika, Roel C. G. M. Loonen, Johannes Eisenlohr, Francesco Goia und Christoph Maurer. Report on Simulation Models of Solar Envelope Components. Herausgegeben von Christoph Maurer. IEA SHC Task 56, Dezember 2019. http://dx.doi.org/10.18777/ieashc-task56-2019-0002.
Der volle Inhalt der QuelleEllis, Abraham, Michael Robert Behnke und Ryan Thomas Elliott. Generic solar photovoltaic system dynamic simulation model specification. Office of Scientific and Technical Information (OSTI), Oktober 2013. http://dx.doi.org/10.2172/1177082.
Der volle Inhalt der QuelleKolb, G., D. Neary, M. Ringham und T. Greenlee. Dynamic simulation of a molten-salt solar receiver. Office of Scientific and Technical Information (OSTI), März 1989. http://dx.doi.org/10.2172/6346050.
Der volle Inhalt der QuelleWu, S. T. Simulation of Ionospheric Response to Solar Distribution Mechanisms. Fort Belvoir, VA: Defense Technical Information Center, Mai 2003. http://dx.doi.org/10.21236/ada416358.
Der volle Inhalt der QuelleGagnon, Colleen M., und William K. Stevens. Use of Modeling and Simulation (M&S) in Support of Joint Command and Control Experimentation: Naval Simulation System (NSS) Support to Fleet Battle Experiments. Fort Belvoir, VA: Defense Technical Information Center, Januar 1999. http://dx.doi.org/10.21236/ada461113.
Der volle Inhalt der QuelleConcepcion, Ricky James, und Ryan Thomas Elliott. Dynamic Simulation over Long Time Periods with 100% Solar Generation. Office of Scientific and Technical Information (OSTI), Dezember 2015. http://dx.doi.org/10.2172/1233624.
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