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- W4366173606 abstract "Hydrogen, as a clean fuel, has the potential to revolutionise scientists and engineers’ search for a more sustainable energy source to alleviate detrimental effects of global warming. Moreover, hydrogen is deemed as an appealing solution to the power storage issue in renewable energy technologies. Among current hydrogen generation methods, thermochemical cycles in general and copper-chlorine (Cu–Cl) cycle, in particular, are of high interest. Advantages such as wide range working temperatures, recycling all the reacting materials, low electric energy requirement in comparison with the counterparts and no need for separation membranes make Cu–Cl cycles a preferable candidate for hydrogen production. In the present work, a novel thermoelectric generator (TEG) based heat exchanger has been investigated to recover heat from the molten salt that leaves the oxygen reactor. Utilizing commercially available finite element software, COMSOL Multiphysics, the performance of the proposed heat exchanger is evaluated, numerically. To further understand the design, the effect of operating conditions on TEG performance has been assessed. According to the results, at the matching resistance, the maximum produced power surpasses 32 W. Moreover, the maximum conversion efficiency yields 5.02% for load resistance at 2.65 Ω. Findings show that increasing the inlet Re numbers of the molten CuCl from 664 to 1106 improves the maximum generated power and conversion efficiency by 9.31% and 9.12%, respectively." @default.
- W4366173606 created "2023-04-19" @default.
- W4366173606 creator A5042285160 @default.
- W4366173606 creator A5048891874 @default.
- W4366173606 date "2023-04-01" @default.
- W4366173606 modified "2023-10-18" @default.
- W4366173606 title "Double pipe TEG-based heat exchanger for indirect heat recovery from molten CuCl without phase change in the thermochemical Cu–Cl cycle of hydrogen production" @default.
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- W4366173606 doi "https://doi.org/10.1016/j.ijhydene.2023.03.362" @default.
- W4366173606 hasPublicationYear "2023" @default.
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