Szczegóły publikacji

Opis bibliograficzny

Numerical analysis of transport phenomena in a steam reforming reactor with optimal multi-segments catalyst distribution / M. PAJĄK, G. BRUS, S. Kimijima, J. S. SZMYD // Journal of Physics. Conference Series ; ISSN 1742-6588. — 2024 — vol. 2766 art. no. 012040, s. 1–6. — Bibliogr. s. 6, Abstr. — Publikacja dostępna online od: 2024-06-03. — 9th European Thermal sciences conference (Eurotherm 2024) : 10–13.06.2024, Lake Bled, Slovenia

Autorzy (4)

Dane bibliometryczne

ID BaDAP156061
Data dodania do BaDAP2024-11-15
Tekst źródłowyURL
DOI10.1088/1742-6596/2766/1/012040
Rok publikacji2024
Typ publikacjireferat w czasopiśmie
Otwarty dostęptak
Creative Commons
Czasopismo/seriaJournal of Physics, Conference Series

Abstract

The contemporary industrial trends pursue alternative energy sources, to substitute fossil fuels. The current direction is induced by concerns regarding exhausting natural resources and the environmental impact of the technologies rising globally. Conventional technologies have a dominant share of the current energy market. The most crucial issue with current technology is the emission of greenhouse gases and their negative impact on climate. One of the possible approaches to limit the issue of emissions is the steam reforming of natural gas, leading to the production of hydrogen. Fuel cells are a robust technology, able to conduct a catalytic conversion of hydrogen and oxygen, for the direct production of electrical energy. Fuel cells are one of the most environment-friendly technologies to this day, as their exhaust gases mostly consist of steam. Currently, almost 50% of the hydrogen produced is acquired via hydrocarbons reforming. The process described in the presented analysis occurs between methane and steam. The presented numerical analysis regards small-scale reactors, which are more suitable when it comes to the processing of distributed or stranded resources for hydrogen production To optimize the small-scale unit's performance, the macro-patterning strategy is introduced. Steam reforming has a strong endothermic character and tends to produce unfavorable thermal conditions. The process enhancement is acquired by introducing non-catalytic regions to the catalytic insert geometry. The non-catalytic segments are introduced to suppress the reaction locally, decreasing the magnitude of temperature gradients. Unification of the temperature distribution is proven to increase the reforming's effectiveness. The presented analysis introduces a new approach to the catalytic insert division, to investigate if a complete temperature field unification is possible. The catalytic insert is simultaneously divided along the reactor's radius and length, resulting in a set of concentric rings, placed along the reactor's axis. The calculations are conducted using in-house numerical procedure, coupled with a genetic algorithm. The algorithm optimizes the process effectiveness by modification of the segment's alignment and porosity.

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Experimental and numerical analysis of transport phenomena in an internal indirect fuel reforming type Solid Oxide Fuel Cells using Ni/SDC as a catalyst / G. BRUS, S. Kimijima, J. S. SZMYD // Journal of Physics. Conference Series ; ISSN 1742-6588. — 2012 — vol. 395 iss. 1, s. 1–8. — Bibliogr. s. 8, Abstr. — Eurotherm 2012 : 6th European Thermal Sciences Conference : [September 04–07, 2012, Poitiers, France] / [eds.] Daniel Petit, Christophe Le Niliot. — [S. l.] : IOP Publishing Ltd., [2012]
fragment książki
#130616Data dodania: 13.10.2020
Numerical analysis of the catalyst distribution optimization in a steam reforming reactor using genetic algorithm / Marcin PAJĄK, Grzegorz BRUS, Janusz SZMYD // W: CPOTE 2020 [Dokument elektroniczny] : 6th international conference Contemporary Problems of Thermal Engineering : Online, 21-24 September 2020 : book of abstracts / ed. Lucyna Czarnowska. — Wersja do Windows. — Dane tekstowe. — [Gliwice : Silesian University of Technology, Department of Thermal Engineering], [2020]. — e-ISBN: 978-83-61506-54-6. — Ekran [1] CPOTE2020-1055-A. — Tryb dostępu: https://www.s-conferences.eu/cpote2020/BookOfAbstracts/Abstra... [2020-10-12]. — Pełny tekst w: CPOTE 2020 [Dokument elektroniczny] : proceedings of the 6th international conference on Contemporary Problems of Thermal Engineering : Poland, 21–24.09.2020 / ed. by Wojciech Stanek, [et al.]. — [S. l.] : Department of Thermal Technology. Silesian University of Technology, cop. 2020. — e-ISBN: 978-83-61506-54-6. — S. 363--374. — Wymagania systemowe: Adobe Reader. — Tryb dostępu: https://cpote.blob.core.windows.net/cpote-container/CPOTE2020_proceedings.pdf[2020-12-11]. — Bibliogr. s. 373--374, Abstr.