Co-combustion of methane hydrate granules and liquid biofuel; Renewable Energy; Vol. 221
| Parent link: | Renewable Energy.— .— Amsterdam: Elsevier Science Publishing Company Inc. Vol. 221.— 2024.— Artical number 119715, 12 p. |
|---|---|
| Corporate Author: | Томский политехнический университет |
| Other Authors: | Antonov D. V. Dmitry Vladimirovich, Dorokhov V. V. Vadim Valerjevich, Nagibin P. S. Pavel Sergeevich, Shlegel N. E. Nikita Evgenjevich, Strizhak P. A. Pavel Alexandrovich |
| Summary: | Title screen The use of fossil hydrocarbons is accompanied by such problems as the depletion of energy resources and high levels of anthropogenic emissions. One of the options for solving these problems can be the involvement in the fuel sector of composite mixed fuels using gas hydrates and vegetable liquid bio-fuels. In this research we test a hypothesis that gas hydrate with added rapeseed oil will make an energy-efficient and environmentally friendly composite fuel. According to the experimental findings, the co-combustion of gas hydrates and liquid biofuels shows high potential. It shortens the ignition delay by 1.5 times at 700 °C in the combustion chamber and by half at 800 °C compared with the combustion of methane hydrate alone. It also produces 18–32% less carbon monoxide, 12–22% less nitrogen oxides, and 14–33% less sulfur oxides than the direct combustion of rapeseed oil. On the basis of the results obtained, we have developed a predictive mathematical model simulating the heat transfer in a layer of composite fuel. A methane hydrate and rapeseed oil mixing scheme is proposed for combustion chambers. We also provide recommendations on how to use the research findings in a number of energy-related applications Текстовый файл AM_Agreement |
| Language: | English |
| Published: |
2024
|
| Subjects: | |
| Online Access: | https://doi.org/10.1016/j.renene.2023.119715 |
| Format: | Electronic Book Chapter |
| KOHA link: | https://koha.lib.tpu.ru/cgi-bin/koha/opac-detail.pl?biblionumber=672751 |
Similar Items
Dissociation and ignition of methane hydrate when in contact with typical sources of fire hazard; Powder Technology; Vol. 427
Published: (2023)
Published: (2023)
Combustion of Liquid Fuels in the Presence of CO2 Hydrate Powder; Fire; Vol. 6, iss. 8
Published: (2023)
Published: (2023)
An Experimental Study of Combustion of a Methane Hydrate Layer Using Thermal Imaging and Particle Tracking Velocimetry Methods; Energies; Vol. 11, iss. 12
Published: (2018)
Published: (2018)
Using methane hydrate to intensify the combustion of composite slurry fuels; Fuel; Vol. 372
Published: (2024)
Published: (2024)
Dissociation of methane and carbon dioxide hydrates: Synergistic effects; Fuel; Vol. 359
Published: (2024)
Published: (2024)
Dissociation and combustion of mixed methane-ethane hydrate; Fuel; Vol. 325
Published: (2022)
Published: (2022)
Combustion of a Powder Layer of Methane Hydrate: The Influence of Layer Height and Air Velocity Above the Layer; Flow, Turbulence and Combustion; Vol. 109
Published: (2022)
Published: (2022)
The Interaction between a Liquid Combustion Front and a Fire Barrier Made of CO2 Hydrate; Fire; Vol. 6, iss. 3
Published: (2023)
Published: (2023)
Studying the influence of key parameters on the methane hydrate dissociation in order to improve the storage efficiency; Journal of Energy Storage; Vol. 44, Pt. A
Published: (2021)
Published: (2021)
Co-combustion of methane hydrate and conventional fuels; Fuel; Vol. 344
Published: (2023)
Published: (2023)
The influence of key parameters on combustion of double gas hydrate; Journal of Natural Gas Science and Engineering; Vol. 80
Published: (2020)
Published: (2020)
Dissociation of methane from a layer of methane-hydrate particles: A new simple model; International Journal of Heat and Mass Transfer; Vol. 213
Published: (2023)
Published: (2023)
The effect of powder aggregates, carbon nanotubes and surfactants on the kinetics of synthesis and dissociation of gas hydrates; Energy; Vol. 325
Published: (2025)
Published: (2025)
Composite Liquid Biofuels for Power Plants and Engines: Review; Energies; Vol. 16, iss. 16
Published: (2023)
Published: (2023)
Role of Warming in Destabilization of Intrapermafrost Gas Hydrates in the Arctic Shelf: Experimental Modeling; Geosciences; Vol. 9, iss. 10
Published: (2019)
Published: (2019)
Role of Salt Migration in Destabilization of Intra Permafrost Hydrates in the Arctic Shelf: Experimental Modeling; Geosciences; Vol. 9, iss. 4
Published: (2019)
Published: (2019)
Prospects of Using Gas Hydrates in Power Plants; Energies; Vol. 15, iss. 12
Published: (2022)
Published: (2022)
Dissociation characteristics and anthropogenic emissions from the combustion of double gas hydrates; Environmental Research; Vol. 214, Pt. 3
Published: (2022)
Published: (2022)
Pool Fire Suppression Using CO2 Hydrate; Energies; Vol. 15, iss. 24
Published: (2022)
Published: (2022)
Anthropogenic Emissions in the Combustion of Liquid Biofuel Droplets; Coke and Chemistry; Vol. 65, iss. 4
Published: (2022)
Published: (2022)
Microexplosive Fragmentation of Liquid-Biofuel Droplets; Technical Physics Letters; Vol. 48, iss. 3
by: Antonov D. V. Dmitry Vladimirovich
Published: (2022)
by: Antonov D. V. Dmitry Vladimirovich
Published: (2022)
Key Areas of Gas Hydrates Study: Review; Energies; Vol. 15, iss. 5
by: Gaydukova O. S. Olga Sergeevna
Published: (2022)
by: Gaydukova O. S. Olga Sergeevna
Published: (2022)
Gas Hydrate Combustion in Five Method of Combustion Organization; Entropy; Vol. 22, iss. 7
Published: (2020)
Published: (2020)
Various methods of flame extinguishing by CO2 hydrate; Fire Safety Journal; Vol. 158
by: Misyura S. Ya. Sergey Yakovlevich
Published: (2025)
by: Misyura S. Ya. Sergey Yakovlevich
Published: (2025)
Heat transfer processes at the gas hydrate plug dissociation; International Journal of Heat and Mass Transfer; Vol. 256, pt. 1
Published: (2026)
Published: (2026)
Thermal Decomposition of Promising Liquid Biofuels: TGA and DSC Data; Coke and Chemistry; Vol. 65, iss. 7
by: Dorokhov V. V. Vadim Valerjevich
Published: (2022)
by: Dorokhov V. V. Vadim Valerjevich
Published: (2022)
Effect of Surfactants on the Synthesis and Dissociation of Gas Hydrates; Fire; Vol. 7, iss. 7
Published: (2024)
Published: (2024)
Limiting Ignition Conditions and Time Characteritics of Combustion of Liquid Biofuel Drops; Chemical and Petroleum Engineering; Vol. 58, iss. 3-4
Published: (2022)
Published: (2022)
Utilization of Oil and Coal Industrial Waste by Combustion in the Formof Slurry and Granulate; Momentum, Heat and Mass Transfer (MHMT'19)
Published: (2019)
Published: (2019)
Investigating regularities of gas hydrate ignition on a heated surface: Experiments and modelling; Combustion and Flame; Vol. 228
by: Gaydukova O. S. Olga Sergeevna
Published: (2021)
by: Gaydukova O. S. Olga Sergeevna
Published: (2021)
The Chemmotology of New Generation Synthetic Liquid Fuels; Chemistry and Technology of Fuels and Oils; Vol. 60, iss. 6
Published: (2025)
Published: (2025)
Mathematical modeling the ignition of several gas hydrate particles; Fuel; Vol. 330
by: Antonov D. V. Dmitry Vladimirovich
Published: (2022)
by: Antonov D. V. Dmitry Vladimirovich
Published: (2022)
Using hydrate foam to extinguish petroleum product tank fires; Journal of Loss Prevention in the Process Industries; Vol. 98
Published: (2025)
Published: (2025)
Using of the Agglomeration-in-liquid for the Technology of the Fine Materials; Procedia Chemistry; Vol. 10 : Chemistry and Chemical Engineering in XXI century
by: Semakina O. K. Olga Konstantinovna
Published: (2014)
by: Semakina O. K. Olga Konstantinovna
Published: (2014)
Modeling of a Double Gas Hydrate Particle Ignition; Applied Sciences; Vol. 12, iss. 12
Published: (2022)
Published: (2022)
Development of Bulk Lightweight Spherosilicate Material Technology Based on Sublimation of Expanded Polystyrene Granules; Refractories and Industrial Ceramics; Vol. 60, iss. 5
by: Nizhegorodov A. I. Anatoliy Ivanovich
Published: (2020)
by: Nizhegorodov A. I. Anatoliy Ivanovich
Published: (2020)
Using methane hydrate to intensify the combustion of low-rank coal fuels; Energy; Vol. 304
Published: (2024)
Published: (2024)
Methane hydrate regasification to intensify the combustion of low-rank coal fuels; Fuel; Vol. 381, pt. 2
Published: (2025)
Published: (2025)
Инжекция углекислого газа в газогидратный пласт; Известия Томского политехнического университета [Известия ТПУ]. Инжиниринг георесурсов; Т. 329, № 1
Published: (2018)
Published: (2018)
Understanding the Permafrost–Hydrate System and Associated Methane Releases in the East Siberian Arctic Shelf; Geosciences; Vol. 9, iss. 6
by: Shakhova N. E. Nataljya Evgenjevna
Published: (2019)
by: Shakhova N. E. Nataljya Evgenjevna
Published: (2019)
Similar Items
-
Dissociation and ignition of methane hydrate when in contact with typical sources of fire hazard; Powder Technology; Vol. 427
Published: (2023) -
Combustion of Liquid Fuels in the Presence of CO2 Hydrate Powder; Fire; Vol. 6, iss. 8
Published: (2023) -
An Experimental Study of Combustion of a Methane Hydrate Layer Using Thermal Imaging and Particle Tracking Velocimetry Methods; Energies; Vol. 11, iss. 12
Published: (2018) -
Using methane hydrate to intensify the combustion of composite slurry fuels; Fuel; Vol. 372
Published: (2024) -
Dissociation of methane and carbon dioxide hydrates: Synergistic effects; Fuel; Vol. 359
Published: (2024)