Academic literature on the topic 'Gasification transport'

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Journal articles on the topic "Gasification transport"

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Alimov, F. B. "PROSPECTS FOR THE DEVELOPMENT OF PIPELINE GAS TRANSPORT." Herald of the Kazakh-British technical university 21, no. 1 (2024): 161–68. http://dx.doi.org/10.55452/1998-6688-2024-21-1-161-168.

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In connection with the global trends in the development of green energy, as well as with the development of gas production in the territory of the Republic of Kazakhstan, the issues of gasification of the country, gas transportation to the consumer are becoming particularly relevant. The article provides a historical overview of gas transport, a comparative analysis of various types of gas transport, the advantages of pipeline gas transport, as well as an overview of the development of the gas industry in general and in particular, issues of gasification, gas transport on the example of the Na
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Shadle, Lawrence J., Esmail R. Monazam, and Michael L. Swanson. "Coal Gasification in a Transport Reactor." Industrial & Engineering Chemistry Research 40, no. 13 (2001): 2782–92. http://dx.doi.org/10.1021/ie001113u.

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Maxwell, T. T., Joe D. Nevill, A. Ertas, and Joe Craig. "Biomass Feed System Flow Control Using a Weigh Belt Table." Journal of Energy Resources Technology 127, no. 1 (2005): 71–82. http://dx.doi.org/10.1115/1.1804500.

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Over the last 100 years, the ability to reliably extract energy through biomass gasification has proven to be quite elusive. Environmental issues, energy shortages, and the lack of coherent energy development policies in third world countries have kindled a renewed interest in biomass gasification technology. Recent innovations in pressurized fluidized bed gasification technology have raised expectations for the development of highly efficient biomass gasification power systems. The use of pressurized gasification systems has introduced a supposedly insurmountable problem regarding the transpo
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Yin, Zhenyong, Hao Xu, Yanpen Chen, and Tiantian Zhao. "Coal char characteristics variation in the gasification process and its influencing factors." Energy Exploration & Exploitation 38, no. 5 (2020): 1559–73. http://dx.doi.org/10.1177/0144598720935523.

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Underground coal gasification is a burgeoning coal exploitation technique that coal is directly converted into gaseous fuel by controlled combustion. In this paper, the gasification experiments of Inner Mongolia lignite, Xinjiang subbituminous coal, and Hancheng medium volatile bitumite were conducted respectively by using the tube furnace coal gasification experiment system. The gasification process was conducted under 3°C/min increment within the range of 600–900°C. The gas composition was analyzed by gas chromatography and the pore structure of the coal char was detected by low-temperature
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Marques, Taís Eliane, York Castillo Santiago, Maria Luiza Grillo Renó, et al. "Environmental and Energetic Evaluation of Refuse-Derived Fuel Gasification for Electricity Generation." Processes 9, no. 12 (2021): 2255. http://dx.doi.org/10.3390/pr9122255.

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In this work, an energetic and environmental evaluation of the electricity generation process through refuse-derived fuel (RDF) gasification coupled to a gas microturbine (GM) was performed. Two scenarios are considered with different gasification agents in RDF gasification modeling: air and air enriched with oxygen. A thermodynamic chemical equilibrium approach was used to analyze the gasification parameters. The results of RDF gasification indicate a maximum value of syngas low heating value (LHV) equal to 8.0 MJ/Nm3, obtained for an equivalence ratio of 0.3. The use of these syngas in the g
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Mysior, Marek, Maciej Tomaszewski, Paweł Stępień, Jacek A. Koziel, and Andrzej Białowiec. "Valorization of Sewage Sludge via Gasification and Transportation of Compressed Syngas." Processes 7, no. 9 (2019): 556. http://dx.doi.org/10.3390/pr7090556.

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A significant challenge in the utilization of alternative gaseous fuels is to use their energy potential at the desired location, considering economic feasibility and sustainability. A potential solution is a compression, transportation in pressure tanks, and generation of electricity and heat directly at the recipient. In this research, the potential for generating syngas from abundant waste substrates was analyzed. The sewage sludge (SS) was used as an example of a bulky and abundant resource that could be valorized via gasification, compression, and transport to end-users in containers. A m
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Yang, Lanhe, and Xing Zhang. "Modeling of Contaminant Transport in Underground Coal Gasification." Energy & Fuels 23, no. 1 (2009): 193–201. http://dx.doi.org/10.1021/ef800284t.

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Swanson, M. L., and D. R. Hajicek. "Advanced high-temperature, high-pressure transport reactor gasification." Fuel and Energy Abstracts 43, no. 4 (2002): 247. http://dx.doi.org/10.1016/s0140-6701(02)86168-9.

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Klavins, Maris, Valdis Bisters, and Juris Burlakovs. "Small Scale Gasification Application and Perspectives in Circular Economy." Environmental and Climate Technologies 22, no. 1 (2018): 42–54. http://dx.doi.org/10.2478/rtuect-2018-0003.

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Abstract Gasification is the process converting solid fuels as coal and organic plant matter, or biomass into combustible gas, called syngas. Gasification is a thermal conversion process using carbonaceous fuel, and it differs substantially from other thermal processes such as incineration or pyrolysis. The process can be used with virtually any carbonaceous fuel. It is an endothermic thermal conversion process, with partial oxidation being the dominant feature. Gasification converts various feedstock including waste to a syngas. Instead of producing only heat and electricity, synthesis gas pr
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Zheng, Ji-Lu, Ya-Hong Zhu, Ming-Qiang Zhu, Kang Kang, and Run-Cang Sun. "A review of gasification of bio-oil for gas production." Sustainable Energy & Fuels 3, no. 7 (2019): 1600–1622. http://dx.doi.org/10.1039/c8se00553b.

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The commercial production of advanced fuels based on bio-oil gasification could be promising because the cost-effective transport of bio-oil could promote large-scale implementation of this biomass technology.
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Dissertations / Theses on the topic "Gasification transport"

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Perkins, Gregory Martin Parry Materials Science &amp Engineering Faculty of Science UNSW. "Mathematical modelling of underground coal gasification." Awarded by:University of New South Wales. Materials Science and Engineering, 2005. http://handle.unsw.edu.au/1959.4/25518.

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Mathematical models were developed to understand cavity growth mechanisms, heat and mass transfer in combination with chemical reaction, and the factors which affect gas production from an underground coal gasifier. A model for coal gasification in a one-dimensional spatial domain was developed and validated through comparison with experimental measurements of the pyrolysis of large coal particles and cylindrical coal blocks. The effects of changes in operating conditions and coal properties on cavity growth were quantified. It was found that the operating conditions which have the greatest im
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Felder, Remo. "Well-to-wheel analysis of renewable transport fuels : synthetic natural gas from wood gasification and hydrogen from concentrated solar energy." lizenzfrei, 2007. http://e-collection.ethbib.ethz.ch/view/eth:30096.

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Терехов, Є. М. "Ukrainian Net of Gaschannels." Thesis, “Ризоцентр” СумГУ, 1999. http://essuir.sumdu.edu.ua/handle/123456789/59711.

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The problems of distribution of gaseous fuels for transport.<br>Розглядаються проблеми поширення газоподібного палива на транспорті.<br>Рассматриваются проблемы распространения газообразного топлива на транспорте.
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Trembly, Jason P. "INVESTIGATION INTO THE EFFECTS OF TRACE COAL SYN GAS SPECIES ON THE PERFORMANCE OF SOLID OXIDE FUEL CELL ANODES." Ohio University / OhioLINK, 2007. http://rave.ohiolink.edu/etdc/view?acc_num=ohiou1178651707.

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Book chapters on the topic "Gasification transport"

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Hüttinger, K. J. "Transport and Other Effects in Coal Gasification." In New Trends in Coal Science. Springer Netherlands, 1988. http://dx.doi.org/10.1007/978-94-009-3045-2_21.

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Jia, Wei, and Akira Umemura. "Computation on Gasification and Combustion of a Moving Droplet in Supercritical Ambiences." In Transport Phenomena In Combustion. Routledge, 2024. https://doi.org/10.1201/9780203735138-79.

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Smith, I. W., D. J. Harris, M. G. Valix, and D. L. Trimm. "Mass Transport and Carbon Reactivity at High Temperature." In Fundamental Issues in Control of Carbon Gasification Reactivity. Springer Netherlands, 1991. http://dx.doi.org/10.1007/978-94-011-3310-4_3.

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Duan, Lunbo, and Lin Li. "Oxygen Carrier Aided Gasification (OCAG)." In Oxygen-Carrier-Aided Combustion Technology for Solid-Fuel Conversion in Fluidized Bed. Springer Nature Singapore, 2023. http://dx.doi.org/10.1007/978-981-19-9127-1_5.

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AbstractGasification is regarded as an effective clean utilization technology of solid fuel, which can convert the chemical energy of solid fuel into gaseous fuel. However, the primary gas products contain not only the essential gas products, but also an unacceptable amount of tars, which will cause operational problems such as blockage of downstream equipment during gasification. Catalysts are often used after the gasifier to catalyze tar in the pyrolysis product gas. However, the activity ofcatalysts generally declines over time, as they will be poisoned by prolonged exposure to an atmospher
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"Fundamental Equations of Transport Phenomena." In Solid Fuels Combustion and Gasification. CRC Press, 2004. http://dx.doi.org/10.1201/9780203027295.axa.

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"The Fundamental Equations of Transport Phenomen." In Solid Fuels Combustion and Gasification. CRC Press, 2010. http://dx.doi.org/10.1201/9781420047509-a1.

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Jha, Prem Shankar, and Michael B. McElroy. "Biomass Gasification Can Complete the Journey to a Net Zero World." In Sun, Wind, and Biomass. Oxford University PressOxford, 2025. https://doi.org/10.1093/9780198944768.003.0012.

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Abstract This chapter explores the role of biomass gasification as a complement to wind and solar energy in India’s transition to a net zero emission world by 2050. It highlights the challenges of transitioning to electric vehicles, including requirements for infrastructure, economic constraints, and the longevity of the existing fleet. Biomass gasification, which converts biomass into sustainable liquid fuels, is presented as a solution, particularly for the transport sector. The chapter discusses the potential of various crop residues, such as rice straw and husk, corn stover, forest product
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Bhat, Muzaffar Ahmad, A. Wani Adil, Bhat Mohammad Sikander, Yaqoob Lone, and Junaid Ahmad Malik. "Waste Management Technology for Sustainable Agriculture." In Practice, Progress, and Proficiency in Sustainability. IGI Global, 2020. http://dx.doi.org/10.4018/978-1-7998-0031-6.ch009.

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The process of collection, transport, disposal, recycling, and monitoring of wastes is called waste management. The waste management is undertaken to recycle the wastes so as to reduce the ill effects of wastes on environment, health, and aesthetics. There are several kinds of wastes produced such as agricultural wastes, municipal wastes, industrial waste, mining waste. Some wastes are more hazardous such as medical wastes and nuclear wastes. Various techniques are used for the management of wastes which includes landfilling, incineration, anaerobic digestion, pyrolysis, plasma gasification, r
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Bhat, Muzaffar Ahmad, A. Wani Adil, Bhat Mohammad Sikander, Yaqoob Lone, and Junaid Ahmad Malik. "Waste Management Technology for Sustainable Agriculture." In Research Anthology on Strategies for Achieving Agricultural Sustainability. IGI Global, 2022. http://dx.doi.org/10.4018/978-1-6684-5352-0.ch021.

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The process of collection, transport, disposal, recycling, and monitoring of wastes is called waste management. The waste management is undertaken to recycle the wastes so as to reduce the ill effects of wastes on environment, health, and aesthetics. There are several kinds of wastes produced such as agricultural wastes, municipal wastes, industrial waste, mining waste. Some wastes are more hazardous such as medical wastes and nuclear wastes. Various techniques are used for the management of wastes which includes landfilling, incineration, anaerobic digestion, pyrolysis, plasma gasification, r
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Liu, Jishan, Cliff Mallett, Andrew Beath, Derek Elsworth, and Barry Brady. "A Coupled Flow-Transport-Deformation Model for Underground Coal Gasification." In Coupled Thermo-Hydro-Mechanical-Chemical Processes in Geo-Systems - Fundamentals, Modelling, Experiments and Applications. Elsevier, 2004. http://dx.doi.org/10.1016/s1571-9960(04)80107-1.

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Conference papers on the topic "Gasification transport"

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Stott, F. H., and C. R. Williams. "The Effects of Rapid Thermal Cycling on the Corrosion of Some High-Temperature Alloys in a Simulated Coal-Gasification Environment." In CORROSION 1998. NACE International, 1998. https://doi.org/10.5006/c1998-98187.

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Abstract An experimental apparatus has been constructed to simulate rapid thermal-cycling conditions in coal-gasification environments, as experienced by metal components of a ceramic gas-filtration system. A comparative study of the corrosion resistances of several commercial iron-nickel-chromium-base alloys in a equilibrated argon-14.1%H2-11.1%H2O-0.1%H2S-0.08%HCl gas at 600°C has been undertaken. Tests were carried out under isothermal, conventional thermal-cycling and very rapid thermal-cycling conditions (1 min cooling, giving temperature decreases of 160° to 280°C, repeated every 6 min).
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Pettersson, Rachel, Jesper Flyg, and Peter Viklund. "High Temperature Corrosion under Simulated Biomass Deposit Conditions." In CORROSION 2009. NACE International, 2009. https://doi.org/10.5006/c2009-09168.

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Abstract Biomass is gaining increasing importance as a renewable energy source for the production of heat, electricity and transport fuels. However, corrosion issues are numerous and include accelerated wastage under ash and alkali salt deposits, erosion, and metal dusting in conjunction with gasification. This work focuses on deposit issues and is based on laboratory exposures for a total of 960 hours at 550°C (1022°F) and 700°C (1292°F) under deposits of 52.4 wt% KCl + 47.6 wt% K2SO4 in a nitrogen-based gaseous atmosphere containing 15% H2O, 5%O2, 13%CO2 and 0.02%HCl. The materials tested in
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Geissler, Caleb H., and Christos T. Maravelias. "Biofuels with Carbon Capture and Storage in the United States Transportation Sector." In Foundations of Computer-Aided Process Design. PSE Press, 2024. http://dx.doi.org/10.69997/sct.167890.

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There is a need to drastically reduce greenhouse gas emissions. While significant progress has been made in electrifying transport, heavy duty transportation and aviation are not likely to be capable of electrification in the near term, spurring significant research into biofuels. When coupled with carbon capture and storage, biofuels can achieve net-negative greenhouse gas emissions via many different conversion technologies such as fermentation, pyrolysis, or gasification to produce ethanol, gasoline, diesel, or jet fuel. However, each pathway has a different efficiency, capital and operatin
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Thapa, Rajan K., Trym Fehn Vaa, Oddvin Vaa, Rajan Jaiswal, and Mladen Jecmenica. "Simulation and optimization of screw feeder in a bubbling fluidized bed gasification reactor." In 63rd International Conference of Scandinavian Simulation Society, SIMS 2022, Trondheim, Norway, September 20-21, 2022. Linköping University Electronic Press, 2022. http://dx.doi.org/10.3384/ecp192051.

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A fluidized bed biomass gasification reactor is used to produce syngas from biomass and municipal wastes. Gasification is a flexible technology where many different types of feedstocks can be used. The University of South-Eastern Norway has a 20kW gasification reactor which is used to investigate the quality and quantity of the syngas produced using different types of feedstocks. At the present, the reactor has the challenge to supply feedstock to the reactor via transport screws. The main challenge consists of achieving continuous feeding and reduction in the feed rate. Therefore, this work i
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Sircar, Indraneel, Anup Sane, and Jay Gore. "A Study of High-Pressure CO2 Recycling Using Pinewood Char Gasification." In ASME 2013 International Mechanical Engineering Congress and Exposition. American Society of Mechanical Engineers, 2013. http://dx.doi.org/10.1115/imece2013-63530.

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Measurements of the reaction rates at high-pressures for gasification of low-ash pinewood char with CO2 are presented. A fixed-bed reactor operated at 1140–1260 K and 1–10 atm was utilized in the present study. Product gas sampling and gas chromatograph measurements enabled tracking of the gasification progress and mass loss data. The mass loss data are interpreted using the volumetric and non-reactive core models. Activation energy, collision frequency and reaction order are reported for each model. The experimental data show high sensitivity to temperature. The data also show an increase of
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Halow, J. S. "Power Generation Through Coal Gasification: An Overview of DOE-Funded Projects." In 1985 Joint Power Generation Conference: GT Papers. American Society of Mechanical Engineers, 1985. http://dx.doi.org/10.1115/85-jpgc-gt-5.

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The U.S. Department of Energy is currently sponsoring a variety of projects aimed at developing advanced systems for power generation using coal gasification as the central conversion process. These systems include both gas turbines and fuel cells as power generating devices and emphasize hot gas cleanup for equipment protection and environmental control from coal contaminants. Gasification projects in the DOE program cover a range of scales from laboratory investigations to PDU scale plants. Fundamental studies of gasification reactions, ash chemistry, transport processes, and modeling are be
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Zlateva, Penka, and Angel Terziev. "Study of the possibilities for using methane as a transport fuel through biomass gasification process." In 2021 6th International Symposium on Environment-Friendly Energies and Applications (EFEA). IEEE, 2021. http://dx.doi.org/10.1109/efea49713.2021.9406250.

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Jeong, Ji Hun, Ji Ho Ahn, and Tong Seop Kim. "Use of Ion Transport Membrane for Oxygen Generation to Enhance the Performance of the Integrated Gasification Fuel Cell System." In ASME Turbo Expo 2019: Turbomachinery Technical Conference and Exposition. American Society of Mechanical Engineers, 2019. http://dx.doi.org/10.1115/gt2019-91946.

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Abstract Carbon capture and storage (CCS) processes have been studied to reduce carbon dioxide in power generation, especially in coal plants because they have been highlighted as the main source of carbon dioxide emission. In this study, the impact of oxygen supply method on the performance of the integrated gasification fuel cell (IGFC) with carbon capture was compared. The target system is based on a solid oxide fuel cell and uses the syngas produced by coal gasification as a fuel. In the reference IGFC, the oxygen required for gasification and oxy-combustion is separated through an air sep
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Plummer, Dawson A., Comas Haynes, and William Wepfer. "Investigating the Integration of a Solid Oxide Fuel Cell and a Gas Turbine System With Coal Gasification Technologies." In ASME 2003 Heat Transfer Summer Conference. ASMEDC, 2003. http://dx.doi.org/10.1115/ht2003-47324.

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Solid oxide fuel cell (SOFC) technology incorporates electrochemical reactions that generate electricity and high quality heat. The coupling of this technology with gas turbine bottoming cycles, to form hybrid power systems, leads to high efficiency levels. The purpose of this study is to conceptually integrate the hybrid power system with existing and imminent coal gasification technologies through computer simulation. The gasification technologies considered for integration include the Kellogg Brown Root (KBR) Transport Reactor and Entrained Coal Gasification. Parametric studies were perform
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Egan, B. Z., D. E. Fain, G. E. Roettger, and D. E. White. "Separating Hydrogen From Coal Gasification Gases With Alumina Membranes." In ASME 1991 International Gas Turbine and Aeroengine Congress and Exposition. American Society of Mechanical Engineers, 1991. http://dx.doi.org/10.1115/91-gt-132.

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Synthesis gas produced in coal gasification processes contains hydrogen, along with carbon monoxide, carbon dioxide, hydrogen sulfide, water, nitrogen, and other gases, depending on the particular gasification process. Development of membrane technology to separate the hydrogen from the raw gas at the high operating temperatures and pressures near exit gas conditions would improve the efficiency of the process. Tubular porous alumina membranes with mean pore radii ranging from about 9 to 22 A have been fabricated and characterized. Based on the results of hydrostatic tests, the burst strength
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Reports on the topic "Gasification transport"

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Schwartz, Joseph, Jason Porter, Neil Patki, et al. Advanced Hydrogen Transport Membrane for Coal Gasification. Office of Scientific and Technical Information (OSTI), 2015. http://dx.doi.org/10.2172/1238351.

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Michael L. Swanson. Advanced High-Temperature, High-Pressure Transport Reactor Gasification. Office of Scientific and Technical Information (OSTI), 2005. http://dx.doi.org/10.2172/896313.

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Michael Swanson and Daniel Laudal. Advanced High-Temperature, High-Pressure Transport Reactor Gasification. Office of Scientific and Technical Information (OSTI), 2008. http://dx.doi.org/10.2172/965112.

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Doctor, R. D., J. C. Molburg, P. R. Thimmapuram, G. F. Berry, and C. D. Livengood. Gasification combined cycle: Carbon dioxide recovery, transport, and disposal. Office of Scientific and Technical Information (OSTI), 1994. http://dx.doi.org/10.2172/10190542.

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Doctor, R. D., J. C. Molburg, and P. R. Thimmapuram. KRW oxygen-blown gasification combined cycle: Carbon dioxide recovery, transport, and disposal. Office of Scientific and Technical Information (OSTI), 1996. http://dx.doi.org/10.2172/373835.

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Elliott, Douglas C., Mariefel V. Olarte, and Todd R. Hart. Pilot-Scale Biorefinery: Sustainable Transport Fuels from Biomass via Integrated Pyrolysis and Catalytic Hydroconversion - Wastewater Cleanup by Catalytic Hydrothermal Gasification. Office of Scientific and Technical Information (OSTI), 2015. http://dx.doi.org/10.2172/1209865.

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Dimitri Gidaspow, Veeraya Jiradilok, Mayank Kashyap, and Benjapon Chalermsinsuwan. Gasificaton Transport: A Multiphase CFD Approach & Measurements. Office of Scientific and Technical Information (OSTI), 2009. http://dx.doi.org/10.2172/966356.

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