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http://thuvienso.vanlanguni.edu.vn/handle/Vanlang_TV/31507
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Trường DC | Giá trị | Ngôn ngữ |
---|---|---|
dc.contributor.author | Park, Jin-Soo (Ed.) | - |
dc.date.accessioned | 2021-06-16T13:42:12Z | - |
dc.date.available | 2021-06-16T13:42:12Z | - |
dc.date.issued | 2021 | - |
dc.identifier.isbn | 9783036506913 (PDF) | - |
dc.identifier.other | SA9746 | - |
dc.identifier.uri | http://thuvienso.vanlanguni.edu.vn/handle/Vanlang_TV/31507 | - |
dc.description | vii, 116p.: ill, some colour; 33 MB. https://doi.org/10.3390/books978-3-0365-0691-3 | vi |
dc.description.abstract | Hydrogen-based energy conversion from chemical to electrical energy, and vice versa, is one of the promising energy paradigms. Two technologies, fuel cells and electrolysis, play a crucial role in solving the emission of greenhouse gas and other pollutants from the combustion of hydrocarbon fuels. Hydrogen is an ultimate fuel as a carbon-free fuel. It can be produced by water electrolysis powered by renewable energy such as wind, solar, ocean, and so on; can be stored by compression, liquefaction, adsorption, or chemical conversion of hydrogen; can be distributed by pipelines, tank trailers, and so on; and finally, can be utilized by fuel cells. Both of the hydrogen-based technologies seek to decrease internal resistance in order to obtain a performance as high as possible. Ion conducting polymers are a great material that can be used make thinner and more durable electrolytes so as to produce efficient stacks and systems with good specific and volumetric power density. There are two different types of ion conducting polymers, that is, cation (mainly proton) and anion exchangeable polymers. The former leads to anodic and cathodic reactions in acidic conditions, but the latter is in basic condition. The difference decides the type of electrocatalysts. In an acidic condition, platinum is mainly used as anodic and cathodic electrocatalysts. Some non-platinum electrocatalysts could be used in a basic condition. Furthermore, the difference also causes different types of electrodes and a different environment to affect the degradation of the materials. Thus, numerical simulation and precise characterization techniques are of significant importance for predicting and analyzing the difference. Prof. Dr. Jin-Soo Park Guest Editor | vi |
dc.language.iso | en | vi |
dc.publisher | MDPI | vi |
dc.subject | Polymer electrolyte | vi |
dc.subject | Gas diffusion layer | vi |
dc.subject | Fuel cell characterization | vi |
dc.subject | Electrocatalyst | vi |
dc.subject | Proton exchange membrane fuel cell | vi |
dc.subject | Anion exchange membrane fuel cell | vi |
dc.subject | Proton exchange membrane water electrolysis | vi |
dc.title | Hydrogen-Based Energy Conversion | vi |
dc.type | Book | vi |
Bộ sưu tập: | Khoa học cơ bản_TLNM_SACH |
Các tập tin trong tài liệu này:
Tập tin | Mô tả | Kích thước | Định dạng | |
---|---|---|---|---|
SA9746_0_Hydrogen-Based Energy Conversion_Contents.pdf Giới hạn truy cập | Contents | 526.16 kB | Adobe PDF | Xem/Tải về Yêu cầu tài liệu |
SA9746_0_Hydrogen-Based Energy Conversion_Cover.pdf Giới hạn truy cập | Contents | 1.65 MB | Adobe PDF | Xem/Tải về Yêu cầu tài liệu |
SA9746_1_Hydrogen-Based Energy Conversion_Article 1.pdf Giới hạn truy cập | Experimental Studies of Effect of Land Width in PEM Fuel Cells with Serpentine Flow Field and Carbon Cloth | 2.11 MB | Adobe PDF | Xem/Tải về Yêu cầu tài liệu |
SA9746_2.Hydrogen-Based Energy Conversion_Article 2.pdf Giới hạn truy cập | Effect of Dispersion Solvents in Catalyst Inks on the Performance and Durability of Catalyst Layers in Proton Exchange Membrane Fuel Cells | 3.06 MB | Adobe PDF | Xem/Tải về Yêu cầu tài liệu |
SA9746_3.Hydrogen-Based Energy Conversion_Article 3.pdf Giới hạn truy cập | Gas Diffusion Layers in Fuel Cells and Electrolysers: A Novel Semi-Empirical Model to Predict Electrical Conductivity of Sintered Metal Fibres | 2.45 MB | Adobe PDF | Xem/Tải về Yêu cầu tài liệu |
SA9746_4.Hydrogen-Based Energy Conversion_Article 4.pdf Giới hạn truy cập | Liquid Water Transport in Porous Metal Foam Flow-Field Fuel Cells: A Two-Phase Numerical Modelling and Ex-Situ Experimental Study | 9.19 MB | Adobe PDF | Xem/Tải về Yêu cầu tài liệu |
SA9746_5.Hydrogen-Based Energy Conversion_Article 5.pdf Giới hạn truy cập | Innovative Membrane Electrode Assembly (MEA) Fabrication for Proton Exchange Membrane Water Electrolysis | 2.44 MB | Adobe PDF | Xem/Tải về Yêu cầu tài liệu |
SA9746_6.Hydrogen-Based Energy Conversion_Article 6.pdf Giới hạn truy cập | KOH-doped Porous Polybenzimidazole Membranes for Solid Alkaline Fuel Cells | 2.5 MB | Adobe PDF | Xem/Tải về Yêu cầu tài liệu |
SA9746_7.Hydrogen-Based Energy Conversion_Article 7.pdf Giới hạn truy cập | Optimization of Perfluoropolyether-Based Gas Diccusion Media Preparation for PEM Fuel Cells | 2.9 MB | Adobe PDF | Xem/Tải về Yêu cầu tài liệu |
SA9746_8.Hydrogen-Based Energy Conversion_Article 8.pdf Giới hạn truy cập | Pore-Filled Anion-Exchange Membranes with Double Cross-Linking Structure for Fuel Cells and Redox Flow Batteries | 7.47 MB | Adobe PDF | Xem/Tải về Yêu cầu tài liệu |
SA9746_9.Hydrogen-Based Energy Conversion_Article 9.pdf Giới hạn truy cập | Composite Membranes Using Hydrophilized Porous Substrates for Hydrogen Based Energy Conversion | 5.03 MB | Adobe PDF | Xem/Tải về Yêu cầu tài liệu |
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