Littérature scientifique sur le sujet « Hydrogen-based fuel cell »
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Articles de revues sur le sujet "Hydrogen-based fuel cell"
Wu, Wenxuan, Yiqu Zhou et Qiyue Wang. « Thermodynamic model of hydrogen-based fuel cell ». Applied and Computational Engineering 23, no 1 (7 novembre 2023) : 130–34. http://dx.doi.org/10.54254/2755-2721/23/20230624.
Texte intégralLI, L., et J. HURLEY. « Ammonia-based hydrogen source for fuel cell applications ». International Journal of Hydrogen Energy 32, no 1 (janvier 2007) : 6–10. http://dx.doi.org/10.1016/j.ijhydene.2006.05.014.
Texte intégralRana, Ishani. « Hydrogen as Fuel of Tomorrow ». INTERANTIONAL JOURNAL OF SCIENTIFIC RESEARCH IN ENGINEERING AND MANAGEMENT 08, no 05 (29 mai 2024) : 1–5. http://dx.doi.org/10.55041/ijsrem34632.
Texte intégralSMITH, NICK. « GEOFFREY BALLARD : FUEL CELL VISIONARY ». Engineer 302, no 7932 (janvier 2022) : 54–55. http://dx.doi.org/10.12968/s0013-7758(22)90333-2.
Texte intégralWang, Jingyu, Xiaoyu Guo, Luoyun Xu, Liuchao Wang, Zhongpei Lu et Zhen Dong. « Integrated Controller for Fuel Cell Systems : A Full-loop Architecture ». Journal of Physics : Conference Series 2774, no 1 (1 juillet 2024) : 012053. http://dx.doi.org/10.1088/1742-6596/2774/1/012053.
Texte intégralZhao, Ming, Wenbin Wang, Xiaochun Zhu, Mengxue Cao, Zhengyuan Gao, Ke Sun, Shuzhan Bai et Guoxiang Li. « Simulation and Control Strategy Study of the Hydrogen Supply System of a Fuel Cell Engine ». Energies 16, no 13 (25 juin 2023) : 4931. http://dx.doi.org/10.3390/en16134931.
Texte intégralWang, Yuan, Jianshan Lu, Xinyu Zhu, Jianfeng Ye, You Kong et Weina Hao. « A GM-Based Energy Management Strategy of Hybrid Power System for Hydrogen Fuel Cell Buses ». Journal of Advanced Transportation 2023 (26 avril 2023) : 1–11. http://dx.doi.org/10.1155/2023/6656612.
Texte intégralChoi, Jaehoon, et Jangyoung Choi. « Research Status of Hydrogen Fuel Cell System Based on Hydrogen Electric Vehicle ». Journal of Energy Engineering 29, no 4 (31 décembre 2020) : 26–34. http://dx.doi.org/10.5855/energy.2020.29.4.026.
Texte intégralBackurs, A., L. Jansons, L. Zemite et A. Laizans. « The Practical Implementation of Hydrogen-Based Sustainable Power Generation Backup ». Latvian Journal of Physics and Technical Sciences 61, no 6 (30 novembre 2024) : 69–79. https://doi.org/10.2478/lpts-2024-0044.
Texte intégralJawad, Noor H., Ali Amer Yahya, Ali R. Al-Shathr, Hussein G. Salih, Khalid T. Rashid, Saad Al-Saadi, Adnan A. AbdulRazak, Issam K. Salih, Adel Zrelli et Qusay F. Alsalhy. « Fuel Cell Types, Properties of Membrane, and Operating Conditions : A Review ». Sustainability 14, no 21 (7 novembre 2022) : 14653. http://dx.doi.org/10.3390/su142114653.
Texte intégralThèses sur le sujet "Hydrogen-based fuel cell"
Kirk, Thomas Jackson. « A solid oxide fuel cell using hydrogen sulfide with ceria-based electrolytes ». Thesis, Georgia Institute of Technology, 1993. http://hdl.handle.net/1853/11270.
Texte intégralNaidoo, Sivapregasen. « Cesium hydrogen sulphate and cesium dihydrogen phosphate based solid composite electrolyte for fuel cell application ». Thesis, University of the Western Cape, 2004. http://etd.uwc.ac.za/index.php?module=etd&.
Texte intégralSporar, Daniel. « Sputter Deposition of Iron Oxide and Tin Oxide Based Films and the Fabrication of Metal Alloy Based Electrodes for Solar Hydrogen Production ». Connect to Online Resource-OhioLINK, 2007. http://rave.ohiolink.edu/etdc/view?acc%5Fnum=toledo1183481021.
Texte intégralTypescript. "Submitted as partial fulfillment of the requirements for The Master of Science degree in Chemical Engineering." Bibliography: leaves 72-77.
MAROCCO, PAOLO. « Hydrogen-based energy storage systems for off-grid locations ». Doctoral thesis, Politecnico di Torino, 2021. http://hdl.handle.net/11583/2945185.
Texte intégralPEDRAZZO, FRANCESCO. « Use of hydrogen as energy storage medium in off-grid, PEM fuel cells based power systems ». Doctoral thesis, Politecnico di Torino, 2012. http://hdl.handle.net/11583/2497207.
Texte intégralWu, Chieh-Chun. « Evaluation of Ceria Based Anodes of Solid Oxide Fuel Cells and their Sulfur Tolerance ». Case Western Reserve University School of Graduate Studies / OhioLINK, 2010. http://rave.ohiolink.edu/etdc/view?acc_num=case1291324978.
Texte intégralAnak, Justin Elissa Cresenta. « Study of electromagnetic compatibility of a very high frequency GaN‐based power converter designed for a hydrogen fuel cell ». Electronic Thesis or Diss., Bourgogne Franche-Comté, 2024. http://www.theses.fr/2024UBFCD069.
Texte intégralThe proposed thesis topic concerns the study, integration, and frequency behavior of a DC/DC static converter based on GaN (HEMT EPC/Infineon) power switches coupled with a hydrogen fuel cell, which incorporates advanced performance diagnostics features. The study of electromagnetic compatibility (EMC) of the entire static converter coupled with a hydrogen fuel cell aims to conduct a frequency analysis of the system, considering that in an integrated context, parasitic inductances and capacitances may disturb the system's operation. It will be important to verify that electromagnetic phenomena do not interfere with the measurements necessary for control and diagnostics. A theoretical study of the conducted disturbances generated in compliance with EMC requirements will be carried out, along with the development of a highly integrated static converter prototype on a 500W hydrogen fuel cell. A mode-stirred reverberation chamber (MSRC) and coupling networks will be used to evaluate the radiated and conducted electromagnetic emissions of the developed static converter to ensure its compliance with the EMC Directive 2014/30/EU
Braden, Drew J. « Fuel cell grade hydrogen production from the steam reforming of bio-ethanol over co-based catalysts an investigation of reaction networks and active sites / ». Connect to this title online, 2005. http://hdl.handle.net/1811/301.
Texte intégralTitle from first page of PDF file. Document formattted into pages: contains [55] p.; also includes graphics. Includes bibliographical references. Available online via Ohio State University's Knowledge Bank.
Kotelnikova, Alena. « Analysis of a hydrogen-based transport system and the role of public policy in the transition to a decarbonised economy ». Thesis, Université Paris-Saclay (ComUE), 2016. http://www.theses.fr/2016SACLX057/document.
Texte intégralWhat economic and policy framework would foster a transition in the European transport sector from fossil fuels to hydrogen in the long term (2030-50)? This research combines empirical and theoretical approaches and aims to answers the following questions:1. How to design appropriate policy instruments to solve inefficiencies in hydrogen mobility deployment?2. How to define abatement cost and an optimal launching date in the presence of learning-by-doing (LBD)?3. How to define an optimal deployment trajectory in presence of LBD and convexity in investment costs?The paper ‘Transition Towards a Hydrogen-Based Passenger Car Transport: Comparative Policy Analysis‘ draws a cross-country comparison between policy instruments that support the deployment of Fuel Cell Electric Vehicle (FCEV). The existing policy framework in favour of FCEV and hydrogen infrastructure deployment is analysed. A set of complementary ex-post policy efficiency indicators is developed and calculated to rank the most active countries, supporters of FCEV. Denmark and Japan emerge as the best providers of favourable conditions for the hydrogen mobility deployment: local authorities put in place price-based incentives (such as subsidies and tax exemptions) making FCEV more financially attractive than its gasoline substitute, and coordinate ramping-up of their hydrogen infrastructure nationally.The paper ’Defining the Abatement Cost in Presence of Learning-by-doing: Application to the Fuel Cell Electric Vehicle’ models the transition of the transport sector from a pollutant state to a clean one. A partial equilibrium model is developed for a car sector of a constant size. In this model the objective of the social planner is to minimize the cost of phasing out a stock of polluting cars from the market over time. The cost includes the private cost of green cars production, which are subject to LBD, and the social cost of carbon, which has an exogenous upward trend. During the transition, the equalization of marginal costs takes into account the fact that the current action has an impact on future costs through LBD. This paper also describes a suboptimal plan: if the deployment trajectory is exogenously given, what is the optimal starting date for the transition? The paper provides a quantitative assessment of the FCEV case for the substitution of the mature Internal Combustion Engine (ICE) vehicles. The analysis concludes that the CO2 price should reach 53€/t for the program to start and for FCEV to be a socially beneficial alternative for decarbonizing part of the projected German car park in the 2050 time frame.The impact of LBD on the timing and costs of emission abatement is, however, ambiguous. On the one hand, LBD supposes delaying abatement activities because of cost reduction of future abatement due to LBD. On the other hand, LBD supposes starting the transition earlier because of cost reduction due to added value to cumulative experience. The paper ‘The Role of Learning-by-Doing in the Adoption of a Green Technology: the Case of Linear LBD’ studies the optimal characteristics of a transition towards green vehicles in the transport sector when both LBD and convexity are present in the cost function. The partial equilibrium model of (Creti et al., 2015) is used as a starting point. For the case of linear LBD the deployment trajectory can be analytically obtained. This allows to conclude that a high learning induces an earlier switch towards green cars in the case of low convexity, and a later switch in the case of high convexity. This insight is used to revisit the hydrogen mobility project in Germany. A high learning lowers the corresponding deployment cost and reduces deepness and duration of the, investment ‘death valley’ (period of negative project’s cash flow). An acceleration of exogenously defined scenario for FCEV deployment, based on the industry forecast, would be beneficial to reduce the associated transition cost
Šmídek, Miroslav. « Kladná elektroda na bázi MnOx pro PEMFC ». Master's thesis, Vysoké učení technické v Brně. Fakulta elektrotechniky a komunikačních technologií, 2011. http://www.nusl.cz/ntk/nusl-219066.
Texte intégralLivres sur le sujet "Hydrogen-based fuel cell"
Minnesota. Business and Community Development Division. Developing the hydrogen economy in Minnesota : Creating jobs and economic development through Minnesota-based renewable hydrogen resources : a report to the State Legislature pursuant to Minn. Laws, Chapter 11, Article 2, Section 19. St. Paul, Minn : The Division, 2004.
Trouver le texte intégralMustanir. Nanocrystalline magnesium based hydrides prepared by reactive mechanical alloying as hydrogen storage materials for fuel cell powered vehicle application : Final report international collaboration research and publication. Banda Aceh] : University of Syiah Kuala, 2010.
Trouver le texte intégralYartys, Volodymyr, Yuriy Solonin et Ihor Zavaliy. HYDROGEN BASED ENERGY STORAGE : STATUS AND RECENT DEVELOPMENTS. Institute for Problems in Materials Science, 2021. http://dx.doi.org/10.15407/materials2021.
Texte intégralIAEA. Role of Nuclear Based Techniques in Development and Characterization of Materials for Hydrogen Storage and Fuel Cells : IAEA Tecdoc Series No. 1676. International Atomic Energy Agency, 2012.
Trouver le texte intégralChapitres de livres sur le sujet "Hydrogen-based fuel cell"
Grube, Thomas, et Bernd Höhlein. « Costs of Making Hydrogen Available in Supply Systems Based on Renewables ». Dans Hydrogen and Fuel Cell, 223–37. Berlin, Heidelberg : Springer Berlin Heidelberg, 2016. http://dx.doi.org/10.1007/978-3-662-44972-1_13.
Texte intégralYoo, Sung Jong, et Yung-Eun Sung. « Design of Palladium-Based Alloy Electrocatalysts for Hydrogen Oxidation Reaction in Fuel Cells ». Dans Fuel Cell Science, 111–46. Hoboken, NJ, USA : John Wiley & Sons, Inc., 2010. http://dx.doi.org/10.1002/9780470630693.ch3.
Texte intégralLi, Luoji, Ying Zhang et Qiulin Li. « Literature Mining Based Hydrogen Fuel Cell Research ». Dans Proceedings of the Eleventh International Conference on Management Science and Engineering Management, 117–28. Cham : Springer International Publishing, 2017. http://dx.doi.org/10.1007/978-3-319-59280-0_9.
Texte intégralKumar, Pranjal, et Onkar Singh. « Fuel Cell and Hydrogen-based Hybrid Energy Conversion Technologies ». Dans Prospects of Hydrogen Fueled Power Generation, 207–21. New York : River Publishers, 2024. http://dx.doi.org/10.1201/9781032656212-9.
Texte intégralLin, Jianlong, Wenjia Wu et Jingtao Wang. « Lamellar and Nanofiber-Based Proton Exchange Membranes for Hydrogen Fuel Cell ». Dans Functional Membranes for High Efficiency Molecule and Ion Transport, 167–217. Singapore : Springer Nature Singapore, 2023. http://dx.doi.org/10.1007/978-981-19-8155-5_5.
Texte intégralRahman, M. R., F. S. Hosseini, P. Taleghani, M. Ghassemi et M. Chizari. « Design and Prototype an Educational Proton-Exchange Membrane Fuel Cell Model ». Dans Springer Proceedings in Energy, 235–44. Cham : Springer Nature Switzerland, 2023. http://dx.doi.org/10.1007/978-3-031-30960-1_22.
Texte intégralHuang, Zheng, Chaoxian Wu, Shaofeng Lu et Fei Xue. « Hydrogen Consumption Minimization for Fuel Cell Trains Based on Speed Trajectory Optimization ». Dans Lecture Notes in Electrical Engineering, 335–45. Singapore : Springer Singapore, 2020. http://dx.doi.org/10.1007/978-981-15-2862-0_32.
Texte intégralZhang, Shaorui, Jing Chen, Chun Xiao et Qinhao Deng. « Hydrogen Fuel Cell Vehicle Energy Management Strategy Based on Adaptive Optimization Methods ». Dans Lecture Notes in Electrical Engineering, 59–65. Singapore : Springer Nature Singapore, 2025. https://doi.org/10.1007/978-981-96-0897-3_7.
Texte intégralLust, Daniel, Marcus Brennenstuhl, Robert Otto, Tobias Erhart, Dietrich Schneider et Dirk Pietruschka. « Case Study of a Hydrogen-Based District Heating in a Rural Area : Modeling and Evaluation of Prediction and Optimization Methodologies ». Dans iCity. Transformative Research for the Livable, Intelligent, and Sustainable City, 145–81. Cham : Springer International Publishing, 2022. http://dx.doi.org/10.1007/978-3-030-92096-8_10.
Texte intégralSingh, Shiv Prakash, Suneel Raju Pendem, Brij Kishor, Dogga Raveendhra et M. Venkatesh Naik. « A review on hybridization and energy management strategies for hydrogen-based fuel cell electric vehicle applications ». Dans Hydrogen Energy, 281–302. Boca Raton : CRC Press, 2024. http://dx.doi.org/10.1201/9781003537816-16.
Texte intégralActes de conférences sur le sujet "Hydrogen-based fuel cell"
Hu, Sha, Weida Chen et Weihong Yang. « Sales research for hydrogen-fuel-cell commercial vehicles based on Vensim ». Dans 2024 4th International Conference on Energy, Power and Electrical Engineering (EPEE), 1113–16. IEEE, 2024. https://doi.org/10.1109/epee63731.2024.10875420.
Texte intégralZhou, Siying, et Wenzhen Fang. « Modeling and Simulation of Fuel Cell Cogeneration System Based on Photovoltaic Hydrogen Production ». Dans 2024 International Symposium on Electrical, Electronics and Information Engineering (ISEEIE), 507–12. IEEE, 2024. https://doi.org/10.1109/iseeie62461.2024.00098.
Texte intégralHuang, Amin, Haiying Dong et Na Sun. « Research on Life Prediction of Hydrogen Fuel Cell Based on Bi-LSTM-SSA ». Dans 2024 IEEE 5th International Conference on Advanced Electrical and Energy Systems (AEES), 147–52. IEEE, 2024. https://doi.org/10.1109/aees63781.2024.10872582.
Texte intégralAbele, Andris R. « Advanced Hydrogen Fuel Systems for Fuel Cell Vehicles ». Dans ASME 2003 1st International Conference on Fuel Cell Science, Engineering and Technology. ASMEDC, 2003. http://dx.doi.org/10.1115/fuelcell2003-1703.
Texte intégralGay, Sébastien E., et Mehrdad Ehsani. « Ammonia Hydrogen Carrier for Fuel Cell Based Transportation ». Dans Future Transportation Technology Conference & Exposition. 400 Commonwealth Drive, Warrendale, PA, United States : SAE International, 2003. http://dx.doi.org/10.4271/2003-01-2251.
Texte intégralWang, Sipu. « A hydrogen fuel cell vehicle based on solar energy hydrogen production technology ». Dans 5th International Conference on Mechatronics and Computer Technology Engineering (MCTE 2022), sous la direction de Dalin Zhang. SPIE, 2022. http://dx.doi.org/10.1117/12.2660381.
Texte intégralOkazaki, Ken. « PROSPECT OF HYDROGEN-BASED ADVANCED ENERGY SYSTEMS INTEGRATING FOSSIL FUEL, HYDROGEN, FUEL CELL AND CO2 SEQUESTRATION ». Dans Annals of the Assembly for International Heat Transfer Conference 13. Begell House Inc., 2006. http://dx.doi.org/10.1615/ihtc13.p30.280.
Texte intégralGay-Desharnais, Sebastien E., Jean-Yves Routex, Mark Holtzapple et Mehrdad Ehsani. « Investigation of Hydrogen Carriers for Fuel-Cell Based Transportation ». Dans SAE 2002 World Congress & Exhibition. 400 Commonwealth Drive, Warrendale, PA, United States : SAE International, 2002. http://dx.doi.org/10.4271/2002-01-0097.
Texte intégralMorales-Barrera, Jose, et F. J. Novegi-Anleo. « Hydrogen fuel cell design and plant-based electrolyte analysis ». Dans 2022 Congreso Internacional de Innovación y Tendencias en Ingeniería (CONIITI). IEEE, 2022. http://dx.doi.org/10.1109/coniiti57704.2022.9953678.
Texte intégralMukherjee, Abhijit, Jason M. Keith, Daniel A. Crowl, David W. Caspary, Jeff Allen, Jeff Naber, Dennis Desheng Meng, John Lukowski, Jay Meldrum et Barry Solomon. « Fuel Cells and Hydrogen Education at Michigan Technological University ». Dans ASME 2010 8th International Conference on Fuel Cell Science, Engineering and Technology. ASMEDC, 2010. http://dx.doi.org/10.1115/fuelcell2010-33343.
Texte intégralRapports d'organisations sur le sujet "Hydrogen-based fuel cell"
Author, Not Given. Fuel Cell Power Model Elucidates Life-Cycle Costs for Fuel Cell-Based Combined Heat, Hydrogen, and Power (CHHP) Production Systems (Fact Sheet). Office of Scientific and Technical Information (OSTI), novembre 2010. http://dx.doi.org/10.2172/993336.
Texte intégralSteward, D., M. Penev, G. Saur, W. Becker et J. Zuboy. Fuel Cell Power Model Version 2 : Startup Guide, System Designs, and Case Studies. Modeling Electricity, Heat, and Hydrogen Generation from Fuel Cell-Based Distributed Energy Systems. Office of Scientific and Technical Information (OSTI), juin 2013. http://dx.doi.org/10.2172/1087789.
Texte intégralRecupero, V., T. Torre, G. Saija et N. Fiordano. Development of a hydrogen generator for fuel cells based on the partial oxidation of methane. Office of Scientific and Technical Information (OSTI), décembre 1996. http://dx.doi.org/10.2172/460335.
Texte intégralFONTECAVE, Marc, Sébastien CANDEL et Thierry POINSOT. Hydrogen today and tomorrow. Académie des sciences, août 2024. http://dx.doi.org/10.62686/8.
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