2017/05/29 by Jekan Thangavelautham, Thangavelautham, Jekan, Daniel Strawser +3
Engineering · Materials Science · Physics and Astronomy · #Advancements in Solid Oxide Fuel Cells #Applied Physics (physics.app-ph) #FOS: Physical sciences #Fuel Cells and Related Materials #Gas Sensing Nanomaterials and Sensors #Instrumentation and Detectors (physics.ins-det) #physics.app-ph #physics.ins-det
paper · pdf · doi:10.48550/arxiv.1705.10785
17 page, 26 figures, accepted to International Journal of Hydrogen Energy, 2017
openalex publication_date 2017/05/29 · arxiv created 2017/10/09 · arxiv updated 2017/10/10 · openalex created_date 2022/10/05 · openalex updated_date 2026/07/28
Field sensor networks have important applications in environmental monitoring, particularly climate change, air, water and soil quality, in disaster monitoring and in border security. The reduced cost of electronics, sensors and actuators make it possible to deploy hundreds if not thousands of these sensor modules. However power technology have not kept up. Current power supply technologies such as batteries limit many applications due to their low specific energy. Photovoltaics typically requires large bulky panels and is dependent on varying solar insolation and therefore requires backup power sources. Polymer Electrolyte Membrane (PEM) fuel cells are a promising alternative, because they are clean, quiet and operate at high efficiency. However challenges remain in achieving long lives due to factors such as catalyst degradation and hydrogen storage. In this work, we devise a framework for designing fuel cells power supplies for field sensor networks to achieve long lives and utilize lithium hydride hydrogen storage technology that offers high energy density of up to 5,000 Wh/kg. Using this design framework, we identify operating conditions to maximize the life of the power supply, meet the required power output and minimize fuel consumption. We devise a series of controllers to achieve this capability and demonstrate it using a bench-top experiment that operated for 5,000 hours. The laboratory experiments point towards a pathway to design and scale these fuel cell power supplies for various field applications. Our studies show the proposed PEM fuel cell hybrid system fueled using lithium hydride offers at least a 3 fold reduction in mass compared to state of the art batteries and 3-5 fold reduction in mass compared to current fuel cell technologies.