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Than Đá: Khảo Sát, Dự Trữ và Sử Dụng
Tóm tắt
Khảo sát than đá là một nhiệm vụ rất đòi hỏi, phụ thuộc nhiều vào các yếu tố địa chất và kinh tế cũng như việc sử dụng than. Nội dung bài giảng này bao gồm thông tin về nhiều kỹ thuật địa chất được sử dụng trong khảo sát than và các chuỗi chứa than, cũng như về việc tính toán, đánh giá, phân loại và báo cáo các nguồn tài nguyên và trữ lượng than. Các đặc điểm chính của việc sử dụng than và một số khía cạnh môi trường được giải thích ngắn gọn. Sự chú ý đặc biệt được dành cho các sản phẩm phụ của việc sử dụng than, ứng dụng của chúng và vai trò có thể có trong một chiến lược không phát thải.
Từ khóa
#khảo sát than #trữ lượng than #sử dụng than #kỹ thuật địa chất #tài nguyên than #môi trường #sản phẩm phụTài liệu tham khảo
Taylor GH, Teichmuller M, Davis A, Diessel CFK, Littke R, Robert P (1998) Organic petrology. Gebruder Borntraeger, Berlin, p 704
Thomas L (2013) Coal geology, 2nd edn. Wiley-Blackwell, Chichester, p 444
Diessel CFK (1992) Coal-bearing depositional system. Springer-Verlag, Berlin, p 721
Thomas L (2002) Coal geology, 1st edn. Wiley-Blackwell, Chichester, p 384
Jovanovski G, Boev B, Makreski P (2023) Chemistry and geology of coal: nature, composition, coking, gasification, liquefaction, production of chemicals, formation, peatification, coalification, coal types, and ranks. ChemTexts 9:2
Speight JG (2015) Handbook of coal analysis. Wiley, New Jersey, p 345
Miller BG (2016) Clean coal engineering technology, 2nd edn. Elsevier, p 856
Williams O, Ure A, Stevens L, Binner E, Dodds C, Kingman DB, Dash PS, Lester E (2019) Formation of metallurgical coke within minutes through coal densification and microwave energy. Energy Fuel 33:6817–6828
Vasireddy S, Morreale B, Cugini A, Song C, Spivey JJ (2011) Clean liquid fuels from direct coal liquefaction: chemistry, catalysis, technological status and challenges. Energy Environ Sci 4:311–345
Al-Zareer M, Dincer I, Rosen MA (2020) Production of hydrogen-rich syngas from novel processes for gasification of petroleum cokes and coals. Int J Hydrog Energy 45:11577–11592
https://en.wikipedia.org/wiki/Sasol. Accessed 25 Dec 2023
Qin F, Jiang W, Ni G, Wang J, Zuo P, Qu S, Shen W (2019) From coal-heavy oil co-refining residue to asphaltene-based functional carbon materials. ACS Sustain Chem Eng 7:4523–4531
Li C, Wang Y, Xiao N, Li H, Ji Y, Guo Z, Liu C, Qiu J (2019) Nitrogen-doped porous carbon from coal for high efficiency CO2 electrocatalytic reduction. Carbon 151:46–52
Pang LSK (1993) Fullerenes from brown (lignite) coal. Fuel Process Technol 34:147–155
Qiu J, Li Y, Wang Y, Wang T, Zhao Z, Zhou Y, Li F, Cheng H (2003) High-purity single-wall carbon nanotubes synthesized from coal by arc discharge. Carbon 41:2170–2173
Zhou H, Bhattarai R, Li Y, Si B, Dong X, Wang T, Yao Z (2022) Towards sustainable coal industry: turning coal bottom ash into wealth. Sci Total Environ 804:149985
Freese B (2004) Coal: a human history. Penguin, New York, p 137
https://view.officeapps.live.com/op/view.aspx?src=https%3A%2F%2Fwww.energyinst.org%2F__data%2Fassets%2Fexcel_doc%2F0007%2F1055545%2FEI-stats-review-all-data.xlsx. Accessed 25 Dec 2023
http://www.statista.com/statistics/1279674/worldwide-coal-demand-share-by-sector/. Accessed 25 Dec 2023
International Energy Agency (IEA), 2023, Coal market update https://iea.blob.core.windows.net/assets/6d364082-35fc-49cf-bf3e-c06a05a3445d/CoalMarketUpdate_July2023.pdf. Accessed 25 Dec 2023
https://ourworldindata.org/grapher/annual-co2-coal?tab=chart&time=1990..latest. Accessed 25 Dec 2023
Ward CR (2011) Coal exploration and mining geology. In: De Vivo B, Grasemann B, Stüwe K (eds) Geology, vol 5. UNESCO-EOLSS (Encyclopedia of Life Support System), p 32
Thomas L (2020) Coal geology, 3rd edn. Wiley Blackwell, New York, p 536
Popov VS (1957) Underground geological survey. In: Troyanskii SV (ed) Mining encyclopedia, vol 2. Geology of coal deposits and geodetic survey, pp 124–140 (in Russian)
Hatherly PJ (2013) Overview on the application of geophysics in coal mining. Int J Coal Geol 114:74–84
Telford WM, Geldart LP, Sheriff RE (1990) Applied geophysics, 2nd edn. Cambridge University Press, Cambridge, p 770
Arsenović S (2020) The spatial position of Đurđevik coal basin: geophysical-geological model, PhD thesis. University of Belgrade, Faculty of Mining and Geology
Arsenović S, Urošević M, Sretenović B, Cvetkov V, Životić D (2016) Modelling of a coal seam of the deposit Durdevik (BiH) by means of 2D reflection seismic imaging. J Geophys Eng 13:422–428
https://www.rockware.com/logplot-image-gallery/. Accessed 25 Dec 2023
Dragišić V, Polomčić D (2009) Hydrogeological dictionary. Belgrade, Faculty of Mining and Geology, p 572
Pavlović V, Šubaranović T, Polomčić D (2012) Surface mine drainage systems. University of Belgrade Faculty of Mining and Geology, Belgrade, p 522
https://i.ytimg.com/vi/9uPcLGC9rlQ/maxresdefault.jpg. Accessed 25 Dec 2023
Pohl W (2011) Economic geology principles and practice: metals, minerals, coal and hydrocarbons—introduction to formation and sustainable exploitation of mineral deposits. Wiley-Blackwell, p 663
International Template for the Public Reporting of Exploration Results, Mineral Resources and Mineral Reserves (The CRIRSCO Template). 2013. https://www.crirsco.com/templates/international_reporting_template_november_2013.pdf. Accessed 25 Dec 2023
United Nations International Classification for Reserves/Resources: Solid Fuels and Mineral Commodities. 2009. https://unece.org/DAM/energy/se/pdfs/UNFC/unfc2009/UNFC2009_ES39_e.pdf. Accessed 25 Dec 2023
Bide T, Brown T, Gun G, Shaw R, Kresse C, Deady E, Delgado P, Horváth Z, Bavec Š, Rokavec D, Eloranta T et al (2019) Deliverable 1.4: Draft good practice guidelines for harmonisation of resource and reserve data. In Optimizing Quality of In-formation in RAw MAterial Data Collection across Europe—ORAMA; European Commission: Luxembourg, p. 90. https://ec.europa.eu/research/participants/documents/downloadPublic?documentIds=080166e5c3abdd5a&appId=PPGMS. Accessed 25 Dec 2023
JORC (2012) https://jorc.org/. Accessed 25 Dec 2023
Pan-European Standard for Reporting of Exploration Results, Mineral Resources and Reserves (PERC Standard) (2017) https://www.crirsco.com/docs/PERC_REPORTING_STANDARD_2017.pdf. Accessed 25 Dec 2023
https://image4.slideserve.com/7518631/resource-vs-reserve-resource-vs-reserve-l.jpg. Accessed 25 Dec 2023
Nelson PF (2013) Environmental issues: emissions, pollution control, assessment and management. In: Osborne D (ed) The coal handbook: towards cleaner production: coal utilisation, vol 2. Woodhead, Cambridge, pp 21–62
Suárez-Ruiz I, Ward CR (2008) Basic factors controlling coal quality and technological behavior of coal. In: Suárez-Ruiz I, Crelling JC (eds) Applied coal petrology, the role of petrology in coal utilization. Elsevier, Academic, Amsterdam, pp 19–59
ECE-UN (1998) Economic Commission for Europe, committee on sustainable energy—United Nations: International Classification of in-Seam Coals. Energy 19:41
https://www.nextinsight.net/images/stories/GeoEnergy/coal-rank.jpg. Accessed 25 Dec 2023
Inumaru J, Hasegawa T, Shirai H, Nishida H, Noda N, Ohyama S (2021) Fossil fuels combustion and environmental issues. In: Ozawa M, Asano H (eds) Advances in power boilers. Elsevier, Amsterdam, pp 1–59
Robl T, Oberlink A, Jones R (2017) Coal combustion products (CCP’s), characteristics, utilization and beneficiation. Woodhead, Cambridge, p 564
Coal Combustion Byproducts, University of Kentucky http://www.uky.edu/KGS/coal/coal-for-combustionbyproducts.php. Accessed 25 Dec 2023.
Suarez-Ruiz I, Crelling JC (2008) Applied coal petrology, the role of petrology in coal utilization. Elsevier, Academic, Amsterdam, p 388
American Coal Ash Association, 2023. Coal Combustion Product (CCP) Production and Use Survey Report. https://acaa-usa.org/wp-content/uploads/2022/12/2021-Production-and-Use-Survey-Results-FINAL.pdf. Accessed 25 Dec 2023
Dai S, Zhao L, Hower JC, Johnston MN, Song W, Wang P, Zhang S (2014) Petrology, mineralogy, and chemistry of size-fractioned fly ash from the Jungar power plant, Inner Mongolia, China, with emphasis on the distribution of rare earth elements. Energy Fuel 28:1502–1514
Dai S, Finkelman RB (2018) Coal as a promising source of critical elements: progress and future prospects. Int J Coal Geol 186(1):155–164
Dong XX, Jin BS, Cao SS, Meng F, Tong C, Ding QF, Tong C (2020) Facile use of coal combustion fly ash (CCFA) as Ni-Re bimetallic catalyst support for high-performance CO2 methanation. Waste Manag 107:244–251
Gollakota ARK, Volli V, Shu CM (2019) Progressive utilisation prospects of coal fly ash: a review. Sci Total Environ 672:951–989
https://mechanicaljungle.com/wp-content/uploads/2021/05/Coal-Power-Plant-Working.jpg. Accessed 25 Dec 2023
https://www.vizagsteel.com/images/co_battery.jpg. Accessed 25 Dec 2023
Dıez MA, Alvarez R, Barriocanal C (2002) Coal for metallurgical coke production: predictions of coke quality and future requirements for coke making. Int J Coal Geol 50:389–412
Razzaq R, Li C, Zhang S (2013) Coke oven gas: availability, properties, purification, and utilization in China. Fuel 113:287–299
Peng H, Suli Z, Kuangdi X (2023) Coke oven gas. In: Xu K (ed) The ECPH encyclopedia of mining and metallurgy. Springer, Singapore
Moral G, Ortiz-Imedio R, Ortiz A, Gorri D, Ortiz I (2022) Hydrogen recovery from coke oven gas. comparative analysis of technical alternatives. Ind Eng Chem Res 61:6106–6124
Portha J-F, Uribe-Soto W, Commenge J-M, Valentin S, Falk L (2021) Techno-economic and carbon footprint analyses of a coke oven gas reuse process for methanol production. Processes 9:1042
Ke R, Zhang T, Bai Y, Zhai Y, Jia Y, Zhou X, Cheng Z, Hong J (2022) Environmental and economical assessment of high-value utilization routes for coke oven gas in China. J Clean Prod 353:131668
Souza Filho IR, Ma Y, Raabe D, Springer H (2023) Fundamentals of green steel production: on the role of gas pressure during hydrogen reduction of iron ores. JOM 75:2274–2286
https://www.uky.edu/KGS/coal/images/10_how%20steel%20is%20made%20diagram.jpg. Accessed 25 Dec 2023
Breault RW (2010) Gasification processes old and new: a basic review of the major technologies. Energies 3:216–240
Shadle LJ, Breault RW, Bennet J (2012) Gasification technologies. In: Chen W-Y et al (eds) Handbook of climate change mitigation and adaptation. Springer, New York, pp 2557–2627
https://www.netl.doe.gov/sites/default/files/inline-images/intro-lg.jpg. Accessed 25 Dec 2023
Perkins G (2018) Underground coal gasification-Part I: field demonstrations and process performance. Prog Energy Combust Sci 67:158–187
Burton E, Friedmann J, Upadhye R (2007) Best practices in underground coal gasification, Technical Report W-7405-Eng-48, Lawrence Livermore National Laboratory, p 119
https://www.gov.scot/binaries/content/gallery/publications/report/2016/10/independent-review-underground-coal-gasification-report/00507468.jpg. Accessed 25 Dec 2023
Dvornikova EV (2018) 11 - Environmental performance of underground coal gasification. In: Blinderman MS, Klimenki AY (eds) Underground coal gasification and combustion. Elsevier, Woodhead, pp 363–399
Mitchell GD (2008) Direct coal liquefaction. In: Suárez-Ruiz I, Crelling JC (eds) Applied coal petrology, the role of petrology in coal utilization. Elsevier, Academic, Amsterdam, pp 145–171
Hower J, Keogh RA, Taulbee DN, Rathbone RF (1993) Petrography of liquefaction residues: semifusinite concentrates from a Peach Orchard coal lithotype, Magoffin County, Kentucky. Org Geochem 20:167–176
Aleksic BR, Ercegovac MD, Cvetkovic OG, Marković B, Glumičić T, Aleksić B, Vitorvić DK (1997) Conversion of low rank coal into liquid fuels by direct hydrogenation. In: Gayer R, Pesek J (eds) European coal geology and technology, vol 125. Geological Society London Special Publication, pp 357–363
https://members.tripod.com/comb_group/cl.html. Accessed 25 Dec 2023
Pang LSK, Vassallo AM, Wilson MA (1991) Fullerenes from coal. Nature 352:480
Haenel MW (1992) Recent progress in coal structure research. Fuel 71:1211–1222
Hoang VC, Hassan M, Gomes VG (2018) Coal derived carbon nanomaterials—recent advances in synthesis and applications. Appl Mater Today 12:342–358
Li H, He X, Wu T, Jin B, Yang L, Qiu J (2022) Synthesis, modification strategies and applications of coal-based carbon materials. Fuel Process Technol 230:107203
Yi H, Zeng G, Lai C, Huang D, Tang L, Gong J, Chen M, Xu P, Wang H, Cheng M, Zhang C, Xiong W (2017) Environment-friendly fullerene separation methods. Chem Eng J 330:134–145
Moothi K, Iyuke SE, Meyyappan M, Falcon R (2012) Coal as a carbon source for carbon nanotube synthesis. Carbon 50:2679–2690
Deshmukh AA, Mhlanga SD, Coville NJ (2010) Carbon spheres. Mater Sci Eng R Rep 70:1–28
Geim A, Novoselov K (2007) The rise of graphene. Nat Mater 6:183–191
Pakhira B, Ghosh S, Maity S, Sangeetha DN, Laha A, Allam A, Sarkar S (2015) Extraction of preformed graphene oxide from coal: its clenched fist form entrapping large molecules. RSC Adv 5:89066–89072
Xu X, Ray R, Gu Y, Ploehn HJ, Gearheart L, Raker K, Scrivens WA (2004) Electrophoretic analysis and purification of fluorescent single-walled carbon nanotube fragments. J Am Chem Soc 126:12736–12737
https://rsv.org.au/wp-content/uploads/porous-carbon.jpg. Accessed 25 Dec 2023
https://en.wikipedia.org/wiki/Fullerene#/media/File:C60_Molecule.svg. Accessed 25 Dec 2023
https://dreamstime.com/stock-photo-d-nano-structure-black-white-carbon-nanotube-image91585742. Accessed 25 Dec 2023
https://thumbs.dreamstime.com/b/carbon-tubes-nanomaterial-new-technologies-carbon-tubes-%20nanomaterial-d-rendering-120181717.jpg. Accessed 25 Dec 2023
https://cdn.shopify.com/s/files/1/1310/3673/products/high-gloss-3k-2x2-twill_63dbbda5-afbb-4cbc-9fcc-151cfba0c973_1800x1800.jpg?v=1568941962. Accessed 25 Dec 2023
https://eitrawmaterials.eu/wp-content/uploads/2017/11/graphene.jpg. Accessed 25 Dec 2023
Giddey S, Badwal SPS, Kulkarni A, Munnings C (2012) A comprehensive review of direct carbon fuel cell technology. Prog Energy Combust Sci 38:360–399
Ozalp N, Abedini H, Abuseada M, Davis R, Rutten J, Verschoren J, Ophoff C, Moens D (2022) An overview of direct carbon fuel cells and their promising potential on coupling with solar thermochemical carbon production. Renew Sust Energ Rev 162:112427
Höök M, Zittel W, Schindler J, Aleklett K (2010) Global coal production outlooks based on a logistic model. Fuel 89:3546–3558
Zhang F, Lu J, Chen L (2023) When green recovery fails to consider coal pushback: exploring global coal rebounds, production, and policy retrenchment post Covid-19. Energy Res Soc Sci 101:103142
