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The analysis studies impact of nanocomposites (NCs) to improve thermal efficiency in hydrogen liquefaction while decreasing energy consumption. The study uses an innovative combination of experimental investigations coupled with machine learning methods to identify superior nanocomposites for their peak performance characteristics. Experimental data measurement of key thermophysical characteristics are estimated by using Pearson's-r correlation analysis. The weightage analysis obtained through the MEREC analysis. The priority weights obtained for the inputs are concentration of nano-additives concentration at 33% while flow rates take 29% and pressure receives 23% and temperature stands at 14%. The optimum input operating characteristics were found in combination 9, with pressure of 0.23 MPa, temperature of 260 K, flow rate of 0.11 kg/s, and NC concentration of 0.24 wt%, leading to the most efficient performance in the hydrogen precooling process. The combination of Graphene/TiO (Anatase) with g-CN/TiO (Graphitic) and SiC/TiO (Silicon Carbide) nano-additives delivering optimum energy consumption and coefficient of performance of 2.70 kWh/kgLH and 5. Effective heat transfer combined with reduced energy losses from integrating these NCs leads to more sustainable and cost-effective hydrogen liquefaction. New energy infrastructure designs benefits from these findings that support hydrogen as a clean energy vector while enhancing industrial liquefaction procedures.
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http://dx.doi.org/10.1038/s41598-025-16832-6 | DOI Listing |
J Phys Condens Matter
September 2025
Institute of Materials Physics, Hangzhou Dianzi University, Zhejiang 310018, Hangzhou, 310018, CHINA.
Magnetic refrigeration, utilizing the magnetocaloric effect (MCE) in magnetic solids, was considered as a high efficiency cooling technology which can be available in a wide temperature range from cryogenic to room temperature. However, large-scale magnetic refrigeration applications are still in their early stages due to the lack of suitable candidate materials with prominent magnetocaloric performance. This article briefly reviews the research development of rare earth-based magnetocaloric materials that with potential applications for hydrogen liquefaction over the past five years.
View Article and Find Full Text PDFSci Rep
September 2025
Mechanical Engineering Department, Faculty of Engineering, Alexandria University, Alexandria, 21544, Egypt.
Hydrogen, as a clean energy source, is recognized as a pivotal energy carrier in the global transition to sustainable energy systems and serves as a crucial pathway for energy storage and efficient utilization within cryogenic systems. Hydrogen liquefaction is one of the most promising methods for increasing its energy density, enabling more efficient storage, transportation, and utilization in large-scale energy systems. However, substantial challenges persist, particularly regarding the high energy consumption associated with the liquefaction process.
View Article and Find Full Text PDFSci Rep
August 2025
Department of Mathematics, College of Natural and Computational Science, Mizan-Tepi University, Tepi, Ethiopia.
The analysis studies impact of nanocomposites (NCs) to improve thermal efficiency in hydrogen liquefaction while decreasing energy consumption. The study uses an innovative combination of experimental investigations coupled with machine learning methods to identify superior nanocomposites for their peak performance characteristics. Experimental data measurement of key thermophysical characteristics are estimated by using Pearson's-r correlation analysis.
View Article and Find Full Text PDFAnal Chem
August 2025
Innovation Center for Advanced Brewing Science and Technology, College of Biomass Science and Engineering, Sichuan University, Chengdu 610065, P. R. China.
The microbial metabolic activity of , a key factor in production, varies due to environmental and raw material diversity. Quality differences exist among batches, even within the same fermentation room, and continue to change during storage. An accurate assessment of 's microbial activity is crucial for enhancing quality and production consistency, yet an in situ, nondestructive detection method remains elusive.
View Article and Find Full Text PDFPhys Chem Chem Phys
August 2025
Storage of Hyperfine Hydrogen for Transport, SHYT, F-75013 Paris, France.
A body of accumulated knowledge on the magneto-chemistry of catalysts for the hydrogen ortho-para conversion is reviewed in order to bridge the gap between theoretical work, laboratory experiments and current industrial needs. Some key issues raised by the conversion of hydrogen nuclear spin isomers, such as its magnetic patterns, which are only partially resolved, are first summarized and the industrial challenges currently faced regarding hydrogen liquefaction and storage are discussed. The theoretical analysis required to understand the quantum characteristics of hydrogen molecules begins with the thermodynamic properties of non-equilibrium mixtures of their two varieties, ortho and para.
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