Affiliation:
1. Department of Mechanical Engineering, Chosun University, Gwangju 61452, Republic of Korea
2. Offshore Industries R&BD Center, Korea Research Institute of Ships & Ocean Engineering, Geoje 53201, Republic of Korea
Abstract
Hydrogen has emerged as a promising carbon-neutral fuel source, spurring research and development efforts to facilitate its widespread adoption. However, the safe handling of hydrogen requires precise leak detection sensors due to its low activation energy and explosive potential. Various detection methods exist, with thermal conductivity measurement being a prominent technique for quantifying hydrogen concentrations. However, challenges remain in achieving high measurement sensitivity at low hydrogen concentrations below 1% for thermal-conductivity-based hydrogen sensors. Recent research explores the 3ω method’s application for measuring hydrogen concentrations in ambient air, offering high spatial and temporal resolutions. This study aims to enhance hydrogen leak detection sensitivity using the 3ω method by conducting thermal analyses on sensor design variables. Factors including substrate material, type, and sensor geometry significantly impact the measurement sensitivity. Comparative evaluations consider the minimum detectable hydrogen concentration while accounting for the uncertainty of the 3ω signal. The proposed suspended-type 3ω sensor is capable of detecting hydrogen leaks in ambient air and provides real-time measurements that are ideal for monitoring hydrogen diffusion. This research serves to bridge the gap between precision and real-time monitoring of hydrogen leak detection, promising significant advancements in the related safety applications.
Funder
Korea Research Institute of Ships & Ocean Engineering
Ministry of Oceans and Fisheries
Subject
Electrical and Electronic Engineering,Biochemistry,Instrumentation,Atomic and Molecular Physics, and Optics,Analytical Chemistry
Reference23 articles.
1. Aziz, M. (2021). Liquid hydrogen: A review on liquefaction, storage, transportation, and safety. Energies, 14.
2. Rivard, E., Trudeau, M., and Zaghib, K. (2019). Hydrogen storage for mobility: A review. Materials, 12.
3. Hydrogen energy, economy and storage: Review and recommendation;Abe;Int. J. Hydrogen Energy,2019
4. Hydrogen safety: The road toward green technology;Najjar;Int. J. Hydrogen Energy,2013
5. An overview of hydrogen safety sensors and requirements;Buttner;Int. J. Hydrogen Energy,2011