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Journal articles on the topic 'Low-calorie fuel gas'

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1

ASHIDA, Tatsuro, Takamitsu YOSHIMOTO, and Satoshi NAKAJIMA. "423 Combution Characteristics and Frame Structure of Low Calorie Fuel Gas." Proceedings of the Symposium on Environmental Engineering 2010.20 (2010): 290–93. http://dx.doi.org/10.1299/jsmeenv.2010.20.290.

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2

Zetra, Yulfi, Anis Febriati, Dyah Nirmala, Rafwan Year Perry Burhan, Arizal Firmansyah, and Zjahra Vianita Nugraheni. "Low-Calorie Coal Liquefaction Products as an Alternative Fuel Oil." Indonesian Journal of Chemistry 22, no. 6 (2022): 1574. http://dx.doi.org/10.22146/ijc.74584.

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Liquefaction of low-rank coal has been done to optimize the utilization of low-rank coal, which is less economical for obtaining alternative fuel oil. Coal samples were taken from the Bukit Pinang coal mine, Samarinda Ulu, East Kalimantan. Coal was liquefied using the NEDOL procedure at PUSPITEK, Serpong, South Tangerang, Indonesia. This Bukit Pinang coal liquefaction produces five fractions consisting of Naphta, Light Oil (LO), Middle Oil (MO), Heavy Oil (HO), and Coal Liquid Bottom (CLB) fractions. The liquefaction yield was dominated by the HO and CLB fractions (> 50% by weight). The nap
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3

Kropiwnicki, Jacek, and Mariusz Furmanek. "Application of Stirling engine for recovery energy from exhaust gas." AUTOBUSY – Technika, Eksploatacja, Systemy Transportowe 19, no. 9 (2018): 89–92. http://dx.doi.org/10.24136/atest.2018.290.

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Stirling engine is device generating mechanical energy without combustion fuel inside cylinder. This fact allows to supply engine from any power source. Example of such energy source can be solar radiation, combustion low-calorie carbon in outside combustion chamber or waste heat from other device like combustion engine mounted in bus or lorry. Use that kind of device in car allows to reduce fuel consumption through increase of efficiency of utilization thermal energy produced in combustion engine. The paper presents commercial solution of Stirling engines powered by waste energy and project o
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4

Konovalov, V., A. Goncharov, A. Fedorov, I. Moshkov, and N. Gostev. "COMBUSTION OF RDF FUEL USING OXYGEN BLAST." Bulletin of Belgorod State Technological University named after. V. G. Shukhov 7, no. 10 (2022): 79–86. http://dx.doi.org/10.34031/2071-7318-2022-7-10-79-86.

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The cement industry has unique opportunities to address the issues of utilization of manmade raw materials and municipal waste. The problem of using alternative fuels in the technological process of cement production is usually due to their low calorie content. The above calculations show the possibility of using RDF fuel as part of a mixed fuel when it is burned under conditions of an increased oxygen content in the air. Reducing the volume of combustion products increases the temperature of the torch, which increases the productivity of the cement rotary kiln, mixed fuel can be used in both
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5

Olek, Małgorzata, Stanisław Kandefer, Wiesław Kaniowski, Witold Żukowski, and Jerzy Baron. "Carbon Shale Combustion in the Fluidized Bed Reactor." Polish Journal of Chemical Technology 16, no. 2 (2014): 74–76. http://dx.doi.org/10.2478/pjct-2014-0033.

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Abstract The purpose of this article is to present the possibilities of coal shale combustion in furnaces with bubbling fluidized bed. Coal shale can be autothermally combusted in the fluidized bed, despite the low calorie value and high ash content of fuel. Established concentrations of CO (500 ppm) and VOC (30 mg/m3) have indicated a high conversion degree of combustible material during combustion process. Average concentrations of SO2 and NOx in the flue gas were higher than this received from the combustion of high quality hard coal, 600 ppm and 500 ppm, respectively. Optional reduction of
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6

SHIMOMUGI, Kengo, Nozomi FURUKAWA, Takeshi OTAKA, Eiji KINOSHITA, and Yasufumi YOSHIMOTO. "G0710405 Combustion Characteristics of a Dual Fuel Diesel Engine with Coconut Oil Methyl Ester and Low-Calorie Gas." Proceedings of Mechanical Engineering Congress, Japan 2014 (2014): _G0710405——_G0710405—. http://dx.doi.org/10.1299/jsmemecj.2014._g0710405-.

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7

Harihastuti, Nani, and Rustiana yuliasni. "Development of gasification process technology for the production of environmentally friendly and sustainable syngas in Wood Processing Industry." E3S Web of Conferences 73 (2018): 01012. http://dx.doi.org/10.1051/e3sconf/20187301012.

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One potential bioenergy that has not been explored to its full is the bioenergy potential of wood processing industry waste. The wood processing industry’s waste from saw mill wood is an alternative fuel substitute for IDO or MFO which has been widely used in the wood processing industry. The calorific value of saw mill wood waste is around 2,600 -3,400 kcal / kg, because there are many cellulose, sulfur, lignin, water biomass and so on. If the use is burned, it will directly give potential environmental impacts in the form of emission gas pollution in the form of Fly Ash, CO2, NOx and CxHy. T
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8

Dykun, T. V., L. I. Haieva, F. V. Kozak, and Ya M. Demianchuk. "ANALYSIS OF OPERATION OF INTERNAL COMBUSTION ENGINES WORKING ONE BIOGAS FROM THE LANDFILL WASTES." Oil and Gas Power Engineering, no. 1(31) (June 26, 2019): 83–91. http://dx.doi.org/10.31471/1993-9868-2019-1(31)-83-91.

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The problem of the effective use of traditional energy sources and the search for alternative resources is currently urgent. Today, in Ukraine, the low-calorie gas potential, which in large quantities is formed in landfills from solid household wastes, in particular biogas, is almost not used. The number of existing domestic installations for the disposal of this gas is insignificant. Today, this valuable resource in quantities of up to 1 billion cubic meters per year is emitted into the atmosphere contaminating it, or burned in flares. Rarely biogas is used in automotive internal combustion e
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9

Viktor, Kovalenko. "Determination of economic efficiency of using biogas in the conditions of industrial enterprises." Theory and practice of metallurgy, no. 6 (November 27, 2019): 12. http://dx.doi.org/10.34185/tpm.6.2019.02.

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To determine the efficiency of biogas use in the existing industrial enterprises of the metallurgical industry of Ukraine and Zaporizhia region, in particular, the basic economic indicators of conversion of standard furnace equipment to biogas mixtures from various derivatives and sources available in the region are calculated. The technical feasibility and economic feasibility of using biogas mixtures as an alternative fuel for energy supply of thermal and heating furnaces of industrial enterprises on the example of a real object are determined. It is shown that to use low-calorie fuel in pow
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10

Taymarov, M. A., V. K. Ilyin, E. G. Chiklyaev, and R. G. Sungatullin. "Features of application of the methane-hydrogen fraction as fuel for thermal power plant boiler." Power engineering: research, equipment, technology 21, no. 3 (2019): 109–16. http://dx.doi.org/10.30724/1998-9903-2019-21-3-109-116.

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The methane-hydrogen fraction is a gaseous hydrocarbon by-product during oil processing for obtaining petroleum products. Until recently, the methane-hydrogen fraction was used as furnace oil in internal technological processes at a refinery. Some of the low-calorie methane-hydrogen fraction was burned in flares. Driven by the prospect of the methane-hydrogen fraction use as a fuel alternative to natural gas for burning in thermal power plants boilers, it became necessary to study the methane-hydrogen fraction combustion processes in large volumes. The conversion of ON-1000/1 and ON-1000/2 fur
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11

Лісовал, Анатолій Анатолійович. "The use of model gas in the study of the gas engine of a power plant." Automation of ship technical facilities 27, no. 1 (2021): 63–72. http://dx.doi.org/10.31653/1819-3293-2021-1-27-63-72.

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Annotation – The analysis of scientific publications over the past ten years in the direction of creating gas ICEs in Ukraine, operating on natural gas, biogas or similar low-calorie fuels. The objectives of the work summarize the results of studies on the use of model gas in a gas internal combustion engine operating on a power plant drive. Developed recommendations on biogas additives to natural gas depending on the power plant load, and to develop a fuel control algorithm. The article provides recommendations on setting up the power system and automatic regulation of a gas engine running on
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12

Tabakaev, Roman B., Konstantin O. Ponomarev, Ivan K. Kalinich, Mariya A. Gaidabrus, Nikita A. Shulaev, and Petr M. Yeletsky. "Complex microwave processing of high-ash brown coal in relation to the energy and metallurgical industries." Bulletin of the Tomsk Polytechnic University Geo Assets Engineering 335, no. 1 (2024): 57–68. http://dx.doi.org/10.18799/24131830/2024/1/4313.

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Relevance. The need of the Tomsk region for valuable energy resources obtained from local low-grade resources to develop iron ore deposits available in the region and cover energy needs. Aim. To study gaseous and solid products obtained from low-grade brown coal of the Talovsky deposit (Tomsk region) under microwave pyrolysis conditions in relation to the energy and metallurgical industries. Objects. Brown coal of the Talovsky deposit (Tomsk region). Methods. Certified SS methods to determine thermal characteristics and elemental composition of coal organic and mineral parts, the "transmission
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13

Alam, Fajar Khoerul, Solihin, and Yunus Ashari. "Manajemen Stockpile untuk Mencegah Terjadinya Self-Combustion di PLTU Banten 2 Labuan OMU." Bandung Conference Series: Mining Engineering 3, no. 2 (2023): 540–49. http://dx.doi.org/10.29313/bcsme.v3i2.9218.

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Abstract. PLTU Banten 2 Labuan OMU is a power plant company with the main fuel source being coal with calories 4000-4900 Kcal/kg with a land area of ​​64.45 Ha. This PLTU has a capacity of 2x300 MW of electricity. Self-combustion occurs due to the reaction of the carbon content in coal with oxygen gas in the air. The problem that arises in the Banten 2 Labuan OMU PLTU stockpile is the frequent occurrence of self-burning due to the ineffective implementation of the FIFO (Frist In Frist Out) management system. The sampling technique for stockpile temperature data was carried out at 12 stockpile
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14

Redko, Ihor, Yurii Burda, Yurii Pivnenko, Hanna Bilovol, Yevgeny Moskalyov, and Vadym Boyko. "NUMERICAL AND EXPERIMENTAL MODELING OF LOW-CALORIE GAS FUELS COMBUSTION PROCESSES." Collection of Scientific Works of the Ukrainian State University of Railway Transport, no. 202 (December 22, 2022): 6–15. http://dx.doi.org/10.18664/1994-7852.202.2022.273496.

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Methane, which is found in coal seams, has long been seen as an alternative to imported natural gas. Capturing that victorious methane can immediately increase the versatility of the production of footwear, increase the safety of the minds of the workforce, and change the negative impact to dovkillya. And yet, there are low technical and technological folds, which galmuyut the development of the type of bottle and utilization of methane.One of the main directions of extraction of coal mine methane is the generation of thermal energy in boiler houses and other heat generators. However, this typ
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15

Hasatani, Masanobu, Hitoki Matsuda, and Akihiro Kataoka. "Desulfurization of low-calorie gas produced from solid fuels in a packed bed of iron oxide pellets." KAGAKU KOGAKU RONBUNSHU 12, no. 5 (1986): 519–24. http://dx.doi.org/10.1252/kakoronbunshu.12.519.

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16

Gordienko, M. O. "The selection of technological basis of deep processing of coal." Journal of Coal Chemistry 4 (2021): 15–21. http://dx.doi.org/10.31081/1681-309x-2021-0-4-15-21.

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THE SELECTION OF TECHNOLOGICAL BASIS OF DEEP PROCESSING OF COAL © M.O. Gordienko (State Enterprise "Ukrainian State Research Coal Chemical Institute (UHIN)", 61023, Kharkov, Vesnina st., 7, Ukraine) The article is devoted to the analysis of the possibility of expanding the raw material base of thermal energy, as well as meeting the demand for motor fuels and chemical products through the thermochemical processing of coal, the reserves of which are large enough and available for extraction and transportation. Moreover, in contrast to technologies such as methanization and liquefaction, the most
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17

Gordienko, M. O. "The selection of technological basis of deep processing of coal." Journal of Coal Chemistry 4 (2021): 15–21. http://dx.doi.org/10.31081/1681-309x-2021-0-4-15-21.

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THE SELECTION OF TECHNOLOGICAL BASIS OF DEEP PROCESSING OF COAL © M.O. Gordienko (State Enterprise "Ukrainian State Research Coal Chemical Institute (UHIN)", 61023, Kharkov, Vesnina st., 7, Ukraine) The article is devoted to the analysis of the possibility of expanding the raw material base of thermal energy, as well as meeting the demand for motor fuels and chemical products through the thermochemical processing of coal, the reserves of which are large enough and available for extraction and transportation. Moreover, in contrast to technologies such as methanization and liquefaction, the most
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18

"The Design of Simple Environmentally Friendly A coal Gasifier in Small Scale with Maximum Capacity of 2 Kgs/Hour." International Journal of Advanced Trends in Computer Science and Engineering 10, no. 4 (2021): 2898–902. http://dx.doi.org/10.30534/ijatcse/2021/381042021.

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The design of a a coal gasification system is a workable unit or device whose work principle to change a coal fuel that has low-calorie value to be gas with a coal gasification system. Gas which is produced from a coal gasification system is a clean gas and environmentally friendly that its gasifier unit is used. The gasification process can be defined as the building process of gas fuel (CO, H2, and N2) in a small sump from a chemical reaction solid fuel characteristically Carbonaceous or Cellulosic, for example, coal, wood, and agriculture rubbish. Reaction process of gasification a chemical
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19

Arisanti, Reni, Maulana Yusuf, and Muhammad Faizal. "Study of The Effect of Coal Quality Parameters on Gas Methane (CH4) Emission in Coal Fire for Sustainable Environment." Indonesian Journal of Environmental Management and Sustainability 1, no. 1 (2017). http://dx.doi.org/10.26554/ijems.2017.1.1.19-22.

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Coal is formation media of Methane Gas which retains the ability to store gas in large quantities. Methane gas (CH4) one of the greenhouse gases that its existence can be troubling, because the gas can increase the impact of global warming, the can damage the ozone layer and increase the temperature of the earth. Methane gas (CH4) emissions that occur in the coal combustion process strongly influenced by the physical and chemical of coal. This research was intended to know how the influence of quality parameters and calorific value of coal methane gas (CH4) emission, and temperature in combust
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