Literatura académica sobre el tema "Alternating Device"
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Artículos de revistas sobre el tema "Alternating Device"
Inganäs, Olle, Fengling Zhang y Mats R. Andersson. "Alternating Copolymers and Alternative Device Geometries for Organic Photovoltaics". AMBIO 41, S2 (marzo de 2012): 138–42. http://dx.doi.org/10.1007/s13280-012-0276-3.
Texto completoYen, Hsi-Hsuan, Wen-Yung Yeh y Hao-Chung Kuo. "GaN alternating current light-emitting device". physica status solidi (a) 204, n.º 6 (junio de 2007): 2077–81. http://dx.doi.org/10.1002/pssa.200674766.
Texto completoLoginov, N. "MANIFUNCTIONAL MAGNETOHYDRODYNAMIC DEVICE". PROBLEMS OF ATOMIC SCIENCE AND TECHNOLOGY. SERIES: NUCLEAR AND REACTOR CONSTANTS 2021, n.º 2 (26 de junio de 2021): 116–26. http://dx.doi.org/10.55176/2414-1038-2021-2-116-126.
Texto completoClarke, K. L., D. M. Sainato y M. E. Ward. "Travel Performance of Preschoolers: The Effects of Mobility Training with a Long Cane versus a Precane". Journal of Visual Impairment & Blindness 88, n.º 1 (enero de 1994): 19–30. http://dx.doi.org/10.1177/0145482x9408800105.
Texto completoMary Shamala L., Zayaraz G., Vivekanandan K. y Vijayalakshmi V. "A Tweakable Key Alternating Lightweight Cipher for Internet of Things". International Journal of Information Security and Privacy 14, n.º 4 (octubre de 2020): 113–33. http://dx.doi.org/10.4018/ijisp.2020100107.
Texto completoSHEVLYUGIN, Maksim V. y Daria V. SEMENOVA. "Improving the Efficiency of High-Speed AC Contact Suspension". Elektrichestvo 5, n.º 5 (2021): 39–43. http://dx.doi.org/10.24160/0013-5380-2021-5-39-43.
Texto completoDanilatos, Gerasimos D. "Radiofrequency Gaseous Detection Device". Microscopy and Microanalysis 6, n.º 1 (enero de 2000): 12–20. http://dx.doi.org/10.1017/s1431927600000027.
Texto completoKozak, Yulia A. "The way of air environment decontamination in departments for poultry meat ready-to-cook products production". Poultry and Chicken Products 26, n.º 2 (2024): 44–46. http://dx.doi.org/10.30975/2073-4999-2024-26-2-44-46.
Texto completoDanilatos, Gerasimos D. "Radiofrequency Gaseous Detection Device". Microscopy and Microanalysis 6, n.º 1 (enero de 2000): 12–20. http://dx.doi.org/10.1007/s100059910001.
Texto completoChen, Shi-Rui y Wing-Kit Choi. "P‐264: Fast‐Response FFS LC Device with Multi‐rubbing Angle for VR Applications". SID Symposium Digest of Technical Papers 55, n.º 1 (junio de 2024): 2075–77. http://dx.doi.org/10.1002/sdtp.18011.
Texto completoTesis sobre el tema "Alternating Device"
Ahmed, Mustafa M. Abdalla. "Alternating-Current Thin-Film Electroluminescent Device Characterization". Doctoral thesis, Vysoké učení technické v Brně. Fakulta elektrotechniky a komunikačních technologií, 2008. http://www.nusl.cz/ntk/nusl-233432.
Texto completoLamanda, Ariana Corinne. "Alternating Current Electrokinetic Manipulation and Concentration of Free Circulating DNA from Blood Samples". Thesis, The University of Arizona, 2014. http://hdl.handle.net/10150/332828.
Texto completoNgu, Sze Song. "Design and control of a direct drive slotless permanent magnet alternating current generator for low speed Bristol cylinder wave device". Thesis, University of Glasgow, 2013. http://theses.gla.ac.uk/4746/.
Texto completoKovchar, Jean. "Design, modeling, fabrication and characterization of a micro-device for the study of alternating flow - Application to energy harvesting and conversion". Electronic Thesis or Diss., Bourgogne Franche-Comté, 2024. http://www.theses.fr/2024UBFCD009.
Texto completoThis thesis focuses on the study of alternating flows within milli- and sub-millimeter-sized channels. The aim is to contribute to the optimization of a miniature (sub-millimeter dimensions) low-temperature (T < 200 °C) energy recovery and conversion machine based on the Stirling cycle principle. This is in line with the recovery of waste heat which is still not exploited in many industrial environments. In Stirling-type engines, the working fluid flows in alternating directions. Although these flows are fairly well understood on a macroscopic scale, very little is known about them on milli and sub-millimeter scales. However, a good understanding of this type of flow at these scales is essential for engine dimensioning and design. In order to contribute to the characterization of alternating flows at these small scales, channels with dimensions close to those of the miniature machine were produced using microfabrication technology. The channels produced have a hydraulic diameter ranging from 200 µm to 1 mm, an aspect ratio between 0.1 and 1, and two different channel lengths (25 mm and 50 mm). Channels with bends were also built to study their influence on flow characteristics. These channels were then implemented on the experimental bench. Initially, the study focused on the characterization of permanent flows, in the Reynolds range from 15 to 510, whose results, in agreement with those from the literature, served as a reference for the study of alternating flows, carried out in a second step with a Womersley number ranging from 0.02 to 0.67. The characterization of alternating flows has shown that the aspect ratio and the hydraulic diameter of the channels affect the flow significantly. On the other hand, this thesis has shown that the influence of channel length and the presence of singularities (bends) on the flow characteristics do not appear to be as decisive as expected. Consequently, among the parameters tested in this thesis, the aspect ratio and hydraulic diameter of the channels are important parameters to take into account for the design of the micro Stirling machine, especially to avoid impacting considerably its efficiency
Hrabal, Michal. "Development of Light Emitting Electroluminescent Device by Means of Material Printing". Doctoral thesis, Vysoké učení technické v Brně. Fakulta chemická, 2019. http://www.nusl.cz/ntk/nusl-402111.
Texto completoDenmark, Daniel Jonwal. "Photopolymerization Synthesis of Magnetic Nanoparticle Embedded Nanogels for Targeted Biotherapeutic Delivery". Scholar Commons, 2017. http://scholarcommons.usf.edu/etd/6827.
Texto completoJakupovic, Edin. "Alternative Information Gathering on Mobile Devices". Thesis, KTH, Skolan för informations- och kommunikationsteknik (ICT), 2017. http://urn.kb.se/resolve?urn=urn:nbn:se:kth:diva-210712.
Texto completoSökning och insamling av information om specifika ämnen är en tidskrävande, men nödvändig praxis. Med den kontinuerliga tillväxten som gått förbi stationära enheters andel, blir mobilmarknaden ett viktigt område att överväga. Med tanke på rörligheten av bärbara enheter, så blir vissa uppgifter svårare att utföra, jämfört med på stationära enheter. Att söka efter information på Internet är generellt långsammare på mobila enheter än på stationära. De största utmaningarna med att söka efter information på Internet med mobila enheter, är de mindre skärmstorlekarna, och tiden spenderad på att ta sig mellan källor och sökresultat i en webbläsare. Dessa utmaningar kan lösas genom att använda en applikation som fokuserar på relevanta sökresultat och sammanfattar innehållet av dem, samt presenterar dem på en enda vy. Syftet med denna studie är att hitta en alternativ datainsamlingsmetod för attskapa en snabbare och enklare sökupplevelse. Denna datainsamlingsmetod kommer snabbt att kunna hitta och samla in data som begärts via en sökterm av en användare. Därefter analyseras och presenteras data för användaren i en sammanfattad form för att eliminera behovet av att besöka innehållets källa. En undersökning utfördes genom att en mindre målgrupp av användare svarade på ett formulär av frågor. Resultaten visade att metoden var snabb, resultaten var ofta relevanta och sammanfattningarna minskade behovet av att besöka källsidan. Men medan metoden hade potential för framtida utveckling, hindras det av de etiska problemen som associeras med användningen av web scrapers.
Kim, Yong Hyun. "Alternative Electrodes for Organic Optoelectronic Devices". Doctoral thesis, Saechsische Landesbibliothek- Staats- und Universitaetsbibliothek Dresden, 2013. http://nbn-resolving.de/urn:nbn:de:bsz:14-qucosa-113279.
Texto completoDie vorliegende Arbeit demonstriert einen Ansatz zur Verwirklichung von kostengünstigen, semi-transparenten, langzeitstabilen und effizienten Organischen Photovoltaik Zellen (OPV) und Organischen Leuchtdioden (OLEDs) durch die Nutzung innovativer Elektrodensysteme. Dazu werden leitfähige Polymere, dotiertes ZnO und Kohlenstoff-Nanoröhrchen eingesetzt. Diese alternativen Elektrodensysteme sind vielversprechende Kandidaten, um das konventionell genutzte Indium-Zinn-Oxid (ITO), welches aufgrund seines hohen Preises und spröden Materialverhaltens einen stark begrenz Faktor bei der Herstellung von kostengünstigen, flexiblen, organischen Bauelementen darstellt, zu ersetzten. Zunächst werden langzeitstabile, effiziente, ITO-freie Solarzellen und transparente OLEDs auf der Basis von Poly(3,4-ethylene-dioxythiophene):Poly(styrenesulfonate) (PEDOT:PSS) Elektroden beschrieben, welche mit Hilfe einer Lösungsmittel-Nachprozessierung und einer Optimierung der Bauelementstruktur hergestellt wurden. Zusätzlich wurde ein leistungsfähiges, internes Lichtauskopplungs-System für weiße OLEDs, basierend auf PEDOT:PSS-beschichteten Metalloxid-Nanostrukturen, entwickelt. Weiterhin werden hoch effiziente, ITO-freie OPV Zellen und OLEDs vorgestellt, bei denen mit verschiedenen nicht-metallischen Elementen dotierte ZnO Elektroden zur Anwendung kamen. Die optimierten ZnO Elektroden bieten im Vergleich zu unserem Laborstandard ITO eine signifikant verbesserte Effizienz. Abschließend werden semi-transparente OPV Zellen mit freistehenden Kohlenstoff-Nanoröhrchen als transparente Top-Elektrode vorgestellt. Die daraus resultierenden Zellen zeigen sehr niedrige Leckströme und eine zufriedenstellende Stabilität. In diesem Zusammenhang wurde auch verschiedene Kombinationen von Elektrodenmaterialen als Top- und Bottom-Elektrode für semi-transparente, ITO-freie OPV Zellen untersucht. Zusammengefasst bestätigen die Resultate, dass OPV und OLEDs basierend auf alternativen Elektroden vielversprechende Eigenschaften für die praktische Anwendung in der Herstellung von effizienten, kostengünstigen, flexiblen und semi-transparenten Bauelement besitzen
Wang, Xian. "Enabling low cost test and tuning of difficult-to-measure device specifications: application to DC-DC converters and high speed devices". Diss., Georgia Institute of Technology, 2015. http://hdl.handle.net/1853/53521.
Texto completoFröbel, Markus. "Novel Concepts For Alternating Current Operated Organic Light-Emitting Devices". Doctoral thesis, Saechsische Landesbibliothek- Staats- und Universitaetsbibliothek Dresden, 2017. http://nbn-resolving.de/urn:nbn:de:bsz:14-qucosa-221652.
Texto completoLibros sobre el tema "Alternating Device"
Joshua, Hannah. Controlling Alternating Current Devices with Arduino. Berkeley, CA: Apress, 2020. http://dx.doi.org/10.1007/978-1-4842-6423-2.
Texto completoKubala, Thomas S. Electricity 2: Devices, circuits, and materials. 7a ed. Albany: Delmar Thomson Learning, 2001.
Buscar texto completoKubala, Thomas S. Electricity 2: Devices, circuits, and materials. 4a ed. Albany, N.Y: Delmar Publishers, 1986.
Buscar texto completoKubala, Thomas S. Electricity 2: Devices, circuits, and materials. 5a ed. Albany, N.Y: Delmar Publishers, 1991.
Buscar texto completoMitarai, Osamu. Alternating current plasma operation in the STOR-M tokamak. Saskatoon, Sask: Plasma Physics Laboratory, University of Saskatchewan, 1995.
Buscar texto completoMitarai, Osamu. Experiments on the current rampdown phase in the STOR-M tokamak for AC operation. Saskatoon, Sask: University of Saskatchewan, Plasma Physics Laboratory, 1992.
Buscar texto completoMitarai, Osamu. Alternating current tokamak reactor with Ohmic ignition and bootstrap current. Saskatoon, Sask: University of Saskatchewan, Plasma Physics Laboratory, 1991.
Buscar texto completoBare, James E. Resonant frequency therapy: Building the Rife Beam Ray Device. [Albuquerque, NM]: The Author, 1999.
Buscar texto completoH, Lucy M. y Langley Research Center, eds. Report on alternative devices to pyrotechnics on spacecraft. Hampton, VA: NASA Langley Research Center, 1996.
Buscar texto completoMitarai, Osamu. Plasma density scaling at the current reversal in the STOR-1M tokamak with AC operation. Saskatoon, Sask: University of Saskatchewan, Plasma Physics Laboratory, 1992.
Buscar texto completoCapítulos de libros sobre el tema "Alternating Device"
Martini, I., M. Kamp y A. Forchel. "Combined Approaches for Nanoelectronic Device Fabrication". En Alternative Lithography, 235–48. Boston, MA: Springer US, 2003. http://dx.doi.org/10.1007/978-1-4419-9204-8_12.
Texto completoSolanki, Mayank, Prantik Chatterjee, Akash Lal y Subhajit Roy. "Accelerated Bounded Model Checking Using Interpolation Based Summaries". En Tools and Algorithms for the Construction and Analysis of Systems, 155–74. Cham: Springer Nature Switzerland, 2024. http://dx.doi.org/10.1007/978-3-031-57249-4_8.
Texto completoMoglestue, C. "Alternating Current, Microwaves". En Monte Carlo Simulation of Semiconductor Devices, 202–15. Dordrecht: Springer Netherlands, 1993. http://dx.doi.org/10.1007/978-94-015-8133-2_9.
Texto completoPetersen, H. "Alternation in simple devices". En Automata, Languages and Programming, 315–23. Berlin, Heidelberg: Springer Berlin Heidelberg, 1995. http://dx.doi.org/10.1007/3-540-60084-1_84.
Texto completoGolinker, Lewis. "Speech-Generating Device Funding". En Principles and Practices in Augmentative and Alternative Communication, 293–349. New York: Routledge, 2024. http://dx.doi.org/10.4324/9781003525905-22.
Texto completoFang, Yan, Steven P. Levitan, Donald M. Chiarulli y Denver H. Dash. "Alternative Architectures for NonBoolean Information Processing Systems". En Emerging Nanoelectronic Devices, 467–97. Chichester, United Kingdom: John Wiley & Sons Ltd, 2014. http://dx.doi.org/10.1002/9781118958254.ch24.
Texto completoKull, Hans. "Alternative Factory Floor Interface Devices". En Mass Customization, 55–58. Berkeley, CA: Apress, 2015. http://dx.doi.org/10.1007/978-1-4842-1007-9_6.
Texto completoFerreira, Helder Lopes, Angelo L’Abbate, Gianluca Fulli y Ulf Häger. "Flexible Alternating Current Transmission Systems (FACTS) Devices". En Power Systems, 119–56. London: Springer London, 2012. http://dx.doi.org/10.1007/978-1-4471-4549-3_4.
Texto completoGiudici, Michael C. "Alternative Site Pacing". En How-to Manual for Pacemaker and ICD Devices, 45–53. Hoboken, NJ, USA: John Wiley & Sons, Inc., 2017. http://dx.doi.org/10.1002/9781118820674.ch7.
Texto completoKuebler, Scott H. y Ronald C. Kuebler. "Chatting with an AAC(Augmentative/Alternative Communication Device)". En Lecture Notes in Computer Science, 368–70. Berlin, Heidelberg: Springer Berlin Heidelberg, 2007. http://dx.doi.org/10.1007/978-3-540-73283-9_41.
Texto completoActas de conferencias sobre el tema "Alternating Device"
Zhong, Yutong, Hanyuan Ma, Qian Lv, Yongzhuo Li, Jiabin Feng, Chen Li, Jialu Xu, Chenxin Yu, Ruitao Lv y Cun-Zheng Ning. "Low-voltage Injection-free Electroluminescence Device based on a Monolayer MoSe2/WSe2 Lateral Heterostructure". En CLEO: Science and Innovations, SF2R.5. Washington, D.C.: Optica Publishing Group, 2024. http://dx.doi.org/10.1364/cleo_si.2024.sf2r.5.
Texto completoKim, Sunggi, Sang-Gyun Woo, Woo-Sung Han, Young-Bum Koh y Moon-Yong Lee. "Application of alternating phase shift mask to device fabrication". En SPIE's 1995 Symposium on Microlithography, editado por Timothy A. Brunner. SPIE, 1995. http://dx.doi.org/10.1117/12.209281.
Texto completoGanapathi, Lasya, Krushitha Reddy Thumukuntla, R. K. Mishra, V. sudarsan y Satya Kamal Chirauri. "Alternating Current Electroluminescence Device Guided for Lowering the Blood Pressure". En 2020 International Conference on Recent Trends on Electronics, Information, Communication & Technology (RTEICT). IEEE, 2020. http://dx.doi.org/10.1109/rteict49044.2020.9315636.
Texto completoJianan Wu, Dongyang Cai, Xinrong Cao y Jintian Tang. "A novel alternating magnetic field measuring device for magnetic induction hyperthermia". En 2013 ICME International Conference on Complex Medical Engineering (CME 2013). IEEE, 2013. http://dx.doi.org/10.1109/iccme.2013.6548243.
Texto completoLiu, Rui Ting, Zi Han Zhuo, Yue Yu, Yu Fang, Jie Qiong Tong, Hong Guo y Jin Tian Tang. "Intermediate alternating electric fields device for enhancing chemotherapy of cancer: Device development and the biological effects". En 2011 4th International Conference on Biomedical Engineering and Informatics (BMEI). IEEE, 2011. http://dx.doi.org/10.1109/bmei.2011.6098402.
Texto completoPolyakov, Vladimir, Dmitrii Sherbakov y Iurii Plotnikov. "Simulation and Experimental Investigation of Digital Control System of Energy Storage Device for Frequency-Controlled Electric Drives". En 2023 XIX International Scientific Technical Conference Alternating Current Electric Drives (ACED). IEEE, 2023. http://dx.doi.org/10.1109/aced57798.2023.10143446.
Texto completoLi, Hanchao, Daisuke Harada, Naohiko Hanajima, Hidekazu Kajiwara, Kentaro Kurashige, Yoshinori Fujihira y Masato Mizukami. "Application and performance evaluation of a lifting device with alternating rotation hoist". En 2016 IEEE/SICE International Symposium on System Integration (SII). IEEE, 2016. http://dx.doi.org/10.1109/sii.2016.7844029.
Texto completoZeller, J. W. y F. C. Jain. "Compact demultiplexers with narrow spectral width channels using alternating-defect coupled-cavity waveguides (AD-CCWs)". En 2007 International Semiconductor Device Research Symposium. IEEE, 2007. http://dx.doi.org/10.1109/isdrs.2007.4422533.
Texto completoWatanabe, Ryo, Taku Hachisu, Michi Sato, Shogo Fukushima, Hiroyuki Kajimoto, Naoki Saito y Yuichiro Mori. "Development of roller-type itch-relief device employing alternating hot and cold stimuli". En the 4th Augmented Human International Conference. New York, New York, USA: ACM Press, 2013. http://dx.doi.org/10.1145/2459236.2459244.
Texto completoSong, Seongkyu y Soon Moon Jeong. "White light-emitting, alternating-current electroluminescent device driven by in-plane electric field". En Organic and Hybrid Light Emitting Materials and Devices XXIV, editado por Franky So, Chihaya Adachi y Jang-Joo Kim. SPIE, 2020. http://dx.doi.org/10.1117/12.2567009.
Texto completoInformes sobre el tema "Alternating Device"
Wager, J. F. y S. M. Goodnick. Hot Electron Physics of Alternating-Current Thin-Film Electroluminescent Devices. Fort Belvoir, VA: Defense Technical Information Center, septiembre de 1994. http://dx.doi.org/10.21236/ada290528.
Texto completoParedes, Juan Roberto, María Clara Ramos, Marina Robles y Emma Näslund-Hadley. Energy Savings, Efficient Use, and Alternative Technologies. Inter-American Development Bank, abril de 2015. http://dx.doi.org/10.18235/0006241.
Texto completoBorland, M. A low-emittance APS lattice with alternating horizontal beta functions at insertion devices. Office of Scientific and Technical Information (OSTI), septiembre de 2009. http://dx.doi.org/10.2172/965254.
Texto completoOgunniyi, Aderinto, Gail Koebke, Heather O'Brien y Oladimeji Ibitayo. Alternative Solder Bond Packaging Approach for High-Voltage (HV) Pulsed Power Devices. Fort Belvoir, VA: Defense Technical Information Center, septiembre de 2016. http://dx.doi.org/10.21236/ad1017567.
Texto completoDoucet, Glenn. Evaluation of an Alternative Rotorcraft Cargo Lowering Device for the Delivery of 500-lb Ammunition Loads. Fort Belvoir, VA: Defense Technical Information Center, diciembre de 1990. http://dx.doi.org/10.21236/ada230995.
Texto completoHirlinger, John M. y Gartung Cheng. Investigation of Alternative Energetic Compositions for Small Electro-Explosive Devices for Medium Caliber Ammunition. Fort Belvoir, VA: Defense Technical Information Center, abril de 2004. http://dx.doi.org/10.21236/ada480817.
Texto completoPhillips, Laurence R., Bankim Tejani, Jonathan Margulies, Jason L. Hills, Bryan T. Richardson, Micheal J. Baca y Laura Weiland. Analysis of operations and cyber security policies for a system of cooperating Flexible Alternating Current Transmission System (FACTS) devices. Office of Scientific and Technical Information (OSTI), diciembre de 2005. http://dx.doi.org/10.2172/882347.
Texto completoBunn, Sarah. Mass testing for COVID-19 using lateral flow tests. Parliamentary Office of Science and Technology, noviembre de 2020. http://dx.doi.org/10.58248/rr52.
Texto completoWright, Louise y Louise Crocker. PR-670-183826-R03 Extended Evaluation of LSM-Magnetostrictive Pipe Models. Chantilly, Virginia: Pipeline Research Council International, Inc. (PRCI), mayo de 2021. http://dx.doi.org/10.55274/r0012097.
Texto completoFinch, Graeme y Stuart Harmon. PR-670-183826-R01 Assessment of Science Behind LSM for Pipeline Integrity. Chantilly, Virginia: Pipeline Research Council International, Inc. (PRCI), septiembre de 2020. http://dx.doi.org/10.55274/r0011803.
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