World Journal of Engineering and Technology

World Journal of Engineering and Technology

ISSN Print: 2331-4222
ISSN Online: 2331-4249
www.scirp.org/journal/wjet
E-mail: wjet@scirp.org
"Review on Innovative Catalytic Reforming of Natural Gas to Syngas"
written by Salwa A. Ghoneim, Radwa A. El-Salamony, Seham A. El-Temtamy,
published by World Journal of Engineering and Technology, Vol.4 No.1, 2016
has been cited by the following article(s):
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[11] Progress of Commercial Technologies for Producing Syngas and Hydrogen from Hydrocarbon Gases
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[12] Electric Arc Methods of Production Hydrogen from Hydrocarbons
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[13] Failure analysis and damage assessment of reformer tubes
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[14] Plasma catalytic non-oxidative conversion of methane into hydrogen and light hydrocarbons
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[15] The main properties of the catalytic reforming catalyst
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[16] Nickel based catalysts supported on porous support for methane steam reforming: potential and short review
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[17] Synthesis and utilization of mesoporous alumina as a supporting material of Ce‐promoted Ni‐based catalysts in the methane reforming process
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[18] Unlocking the potential of Ni and Co-based catalysts for sustainable syngas production via Bi-reforming of methane: A review of recent advances
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[19] Nano-catalysts for gas to liquids: A concise review
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[20] Non-catalytic partial oxidation of hydrocarbon gases to syngas and hydrogen: A systematic review
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[21] Experimental research on hydrogen-rich syngas yield by catalytic biomass air-gasification over Ni/olivine as in-situ tar destruction catalyst
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[22] Quality Standards and Pharmacological Interventions of Natural Oils: Current Scenario and Future Perspectives
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[23] Highly Tunable Syngas Product Ratios Enabled by Novel Nanoscale Hybrid Electrolytes Designed for Combined CO2 Capture and Electrochemical Conversion
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[26] Plasma steam methane reforming (PSMR) using a microwave torch for commercial-scale distributed hydrogen production
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[27] Tuning the efficiency and product composition for electrocatalytic CO 2 reduction to syngas over zinc films by morphology and wettability
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[28] Process design and techno-economic analysis of dual hydrogen and methanol production from plastics using energy integrated system
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[29] Deactivation and in-situ regeneration of Dy-doped Ni/SiO2 catalyst in CO2 reforming of methanol
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[30] CeO2 Nanorod@NiPhy Core‐shell Catalyst for Methane Dry Reforming: Effect of Simultaneous Sintering Prevention of CeO2 Support and Active Ni
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[31] Comparative Study of the Catalytic Oxidation of Hydrocarbons on Platinum and Palladium Wires and Nanoparticles
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[32] Tri-reforming of Methane for Syngas Production using Ni catalysts: Current Status and Future Outlook
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[33] Fabrication of a Ceramic Foam Catalyst Using Polymer Foam Scrap via the Replica Technique for Dry Reforming
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[34] Simulation and Modelling of Hydrogen Production from Waste Plastics: Technoeconomic Analysis
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[35] Hydrogen Generation from CO2 Reforming of Biomass-Derived Methanol on Ni/SiO2 Catalyst
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[36] Reforming processes for syngas production: A mini-review on the current status, challenges, and prospects for biomass conversion to fuels
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[37] Influence of Catalytic Supports on Methane Steam Reforming: A Short Review
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[38] Techno-Economic Analysis of the Conversion of Waste Plastics to Hydrogen Fuel
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[39] CFD analysis of a solar powered bayonet-tube reformer processing biogas
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[40] Technoeconomic Feasibility of Hydrogen Production from Waste Tires with the Control of CO2 Emissions
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[42] CARGEN™: A NOVEL TECHNOLOGY TO ADVANCE METHANE REFORMING USING CO2
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[43] Oscillatory Behaviour of Ni Supported on ZrO2 in the Catalytic Partial Oxidation of Methane as Determined by Activation Procedure. Materials 2021, 14, 2495
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[44] Study of the kinetic regularities of the reaction of methane carbonate conversion
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[46] Methanolsynthese aus CO2 an In2O3-basierten Katalysatoren in Slurry-und Festbettreaktoren
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[48] Thermocatalytic hydrogen production through decomposition of methane-A review
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[49] Computational Fluid Dynamics Modeling to Simulate a Combined Reforming Process for Syngas and Hydrogen Production
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[50] Current advances in syngas (CO+ H2) production through bi-reforming of methane using various catalysts: A review
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[51] Recent progress in ceria-based catalysts for the dry reforming of methane: A review
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[52] Methanol economy and net zero emissions: critical analysis of catalytic processes, reactors and technologies
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[53] A comprehensive review on improving the production of rich-hydrogen via combined steam and CO2 reforming of methane over Ni-based catalysts
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[54] Kinetic Modeling of Combined Steam and CO2 Reforming of Methane over the Ni–Pd/Al2O3 Catalyst Using Langmuir–Hinshelwood and Langmuir–Freundlich …
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[55] Numerical simulation of commercial scale autothermal chemical looping reforming and bi-reforming for syngas production
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[56] Optimization of CO2 reforming of methane process for the syngas production over Ni–Ce/TiO2–ZrO2 catalyst using the Taguchi method
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[57] Highly selective production of syngas (> 99%) in the partial oxidation of methane at 480° C over Pd/CeO2 catalyst promoted by HCl
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[58] Steering the Catalytic Properties of Intermetallic Compounds and Alloys in Reforming Reactions by Controlled in Situ Decomposition and Self-Activation
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[59] Syngas production with CO2 utilization through the oxidative reforming of methane in a new cermet-carbonate packed-bed membrane reactor
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[60] Oscillatory Behaviour of Ni Supported on ZrO2 in the Catalytic Partial Oxidation of Methane as Determined by Activation Procedure
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[61] Techno-economic analysis of dual methanol and hydrogen production using energy mix systems with CO2 capture
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[62] Katalizatory do konwersji metanu z dwutlenkiem węgla
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[65] Elevated CO-free hydrogen productivity through ethanol steam reforming using cubic Co-Nanoparticles based MgO catalyst
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[66] Performance Improvement of VHTR Design Technology
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[67] Combined steam and CO2 reforming of methane (CSCRM) over Ni–Pd/Al2O3 catalyst for syngas formation
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[68] Exploration of ceramic supports to be used in membrane reactors for hydrogen production and separation
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[69] FeCrAl as a catalyst support
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[70] Catalytic conversion of greenhouse gases (CO2 and CH4) to syngas over Ni-based catalyst: Effects of Ce-La promoters
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[71] Valuation of catalytic activity of nickel–zirconia‐based catalysts using lanthanum co‐support for dry reforming of methane
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[72] Optimal Design and Energy-Saving Investigation of the Triple CO2 Feeds for Methanol Production System by Combining Steam and Dry Methane Reforming
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[73] Influence of feed rate and testing variables for low-temperature tri-reforming of methane on the Ni@ MWCNT/Ce catalyst
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[74] Catalytic partial oxidation of methane to syngas: review of perovskite catalysts and membrane reactors
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[75] Catalytic steam reforming of tar for enhancing hydrogen production from biomass gasification: a review
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[76] Syngas production through steam and CO 2 reforming of methane over Ni-based catalyst-A Review
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[77] Carbide-Modified Pd on ZrO2 as Active Phase for CO2-Reforming of Methane—A Model Phase Boundary Approach
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[78] Hydrogen and carbon monoxide derivation over metal supported on fibrous silica KCC-1
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[79] Production and Applications of Synthesis Gas
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[82] Light-driven proton reduction with in situ supported copper nanoparticles
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[83] Role of the nanoparticles of Cu-Co alloy derived from perovskite in dry reforming of methane
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[84] Catalytic aqueous phase reforming of the Fischer-Tropsch derived water fraction: Kinetics and reactor modeling
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[85] Dry reforming of methane using modified sodium and protonated titanate nanotube catalysts
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[86] Étude des performances et de la désactivation par empoisonnement au soufre du catalyseur spinelle Ni-UGSO: cas du reformage autothermique du méthane
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[89] STEAM REFORMING OF GASIFIED BIOMASS TAR FOR HYDROGEN PRODUCTION OVER NICKEL–DOLOMITE BASED CATALYST
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[90] Design of new catalysts for chemical CO2 utilization
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[91] Catalytic methane reforming into synthesis gas over developed composite materials prepared by combustion synthesis
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[92] Ilmenite ore as an oxygen carrier for pressurized chemical looping reforming: Characterization and process simulation
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[93] Combustion vs. Hybrid Sol-Gel-Plasma Surface Design of Coke-Resistant Co-Promoted Ni-Spinel Nanocatalyst Used in Combined Reforming of CH4/CO2/O2 for …
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[94] Catalytic steam reforming of complex gasified biomass tar model toward hydrogen over dolomite promoted nickel catalysts
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[96] The Fe-Co-Cu supported on MWCNT as catalyst for the tri-reforming of methane–Investigating the structure changes of the catalysts
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[97] Simultaneous CO2 and O2 separation coupled to oxy-dry reforming of CH4 by means of a ceramic-carbonate membrane reactor for in situ syngas production
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[98] Dry and steam reforming of methane. Comparison and analysis of recently investigated catalytic materials. A short review.
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[99] Spinel Mixed Oxides for Chemical-Loop Reforming: From Solid State to Potential Application
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[100] Catalytic Conversion of Methane at Low Temperatures–A Critical Review
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[105] The Role of Neodymium in the Optimization of a Ni/CeO2 and Ni/CeZrO2 Methane Dry Reforming Catalyst
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[106] Oxygen Transfer at Metal-Reducible Oxide Nanocatalyst Interfaces: Contrasting Carbon Growth from Ethane and Ethylene
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[107] Industrial Ni-Based Catalyst Development for Carbon Dioxide Reforming of Methane
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[108] Comparative assessment of response surface methodology quadratic models and artificial neural network method for dry reforming of natural gas
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[109] Impregnation vs. sol-gel and sol-gel-plasma dispersion of nickel nanoparticles over Al2O3 employed in combined dry reforming and partial oxidation of greenhouse …
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[110] Innovative hydrocarbons recovery and utilization technology using reactor-separation membranes for off-gases emission during crude oil shuttle tanker transportation …
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[111] Tri-Reforming of Natural Gas for Hydrogen Production
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[112] Zirconium‐assistierte Aktivierung von Palladium zur Steigerung der Produktion von Synthesegas in der Trockenreformierung von Methan
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[113] Zirconium‐Assisted Activation of Palladium To Boost Syngas Production by Methane Dry Reforming
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[114] Perspective of catalysts for (Tri) reforming of natural gas and flue gas rich in CO2
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[117] Process Integration of a Gas to Liquid Plant and a Power Plant
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[118] Simulations of Tri-reforming of Methane Using Solar Energy
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[120] The Upgrading of Methane to Aromatics Over Transition Metal Loaded Hierarchical Zeolites
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[122] Nickel aluminide coating as catalyst in steam methane reforming microreactor
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[123] CO 2 utilization through integration of post-combustion carbon capture process with Fischer-Tropsch gas-to-liquid (GTL) processes
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[124] The Role of Synthetic Fuels for a Carbon Neutral Economy
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[125] Integration of Reforming and CO2 Removal processes in a GTL Plant
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[126] What is the most energy efficient route for biogas utilization: Heat, electricity or transport?
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[127] Catalysts for conversion of synthesis gas
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[129] Process Intensification of Gasification and Reforming Technology for Enhanced Power Generation with Carbon Capture and Storage
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[130] 천연가스 열량변동이 산업용 개질기 성능에 미치는 영향
2017?? ?????? ?? ???? ???, 2017
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[133] V. Palma, C. Ruocco, M. Martino, E. Meloni, A. Ricca University of Salerno, Salerno, Italy
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[134] Integration of Reforming and CO2 Removal Processes in a Gas-to-Liquid Plant
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[135] Dry reforming of methane over nickel catalysts modified with noble metals
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