Biomethane storage: Evaluation of technologies, end uses, business models, and sustainability
Tài liệu tham khảo
Barton, 2004, Energy storage and its use with intermittent renewable energy, IEEE Trans Energy Convers, 19, 441, 10.1109/TEC.2003.822305
Franco, 2011, Strategies for optimal penetration of intermittent renewables in complex energy systems based on techno-operational objectives, Renewable Energy, 36, 743, 10.1016/j.renene.2010.07.022
Clegg, 2016, Storing renewables in the gas network: modelling of power-to-gas seasonal storage flexibility in low-carbon power systems, IET Gener Transm Distrib, 10, 566, 10.1049/iet-gtd.2015.0439
Thrän D, Billig E, Persson T, Svensson M, Daniel-Gromke J, Ponitka J et al. Biomethane - status and factors affecting market development and trade. Junginger M, Baxter D, editors. IEA Task 40 and Task 37 Joint Study, 2014.
Buchanan S, Landauer M, Quinata J, Morales L, Christie K, Kirschner D et al. Comparing pipes & wires. A capital cost analysis of energy transmission via natural gas pipelines and overhead electric wire lines. A joint study by the Bonneville Power Administration and the Northwest Gas Association. <http://www.northwestchptap.org/NwChpDocs/Transmission_and_N_Gas_Comparing_Pipes_and_Wires_032304.pdf> [accessed June 2016].
Kempener R, de Vivero G. Renewables and electricity storage. A technology roadmap for REmap 2030. IRENA Report; 2015.
Wang, 2015, Biogas production improvement and C/N control by natural clinoptilolite addition into anaerobic co-digestion of phragmites australis, feces and kitchen waste, Bioresour Technol, 180, 192, 10.1016/j.biortech.2014.12.023
McLeod, 2014, Biogas upgrading by chemical absorption using ammonia rich absorbents derived from wastewater, Water Res, 67, 175, 10.1016/j.watres.2014.09.010
Saeidi, 2014, Hydrogenation of CO2 to value-added products - a review and potential future developments, J CO2 Utilizat, 5, 66, 10.1016/j.jcou.2013.12.005
Szuhaj, 2016, Conversion of H2 and CO2 to CH4 and acetate in fed-batch biogas reactors by mixed biogas community: a novel route for the power-to-gas concept, Biotechnol Biofuels, 9, 10.1186/s13068-016-0515-0
Budzianowski, 2016, A review of potential innovations for production, conditioning and utilization of biogas with multiple criteria assessment, Renew Sustain Energy Rev, 54, 1148, 10.1016/j.rser.2015.10.054
Europejski Komitet Ekonomiczno-Społeczny. Opinia w sprawie: “Magazynowanie energii - czynnik integracji i bezpieczeństwa energetycznego”. Dziennik Urzędowy Unii Europejskiej. Brussels, vol. C383; 2015. p. 19–23.
Budny, 2015, Economic feasibility of pipe storage and underground reservoir storage options for power-to-gas load balancing, Energy Convers Manage, 102, 258, 10.1016/j.enconman.2015.04.070
Kosowski, 2008
Ciborski, 2013, Kupić latem, sprzedać zimą. Magazynowanie gazu ziemnego w kontekście zmian zachodzących na rynku, Rynek Polskiej Nafty i Gazu, 8
Paturska, 2015, Economic assessment of biomethane supply system based on natural gas infrastructure, Energy Procedia, 72, 71, 10.1016/j.egypro.2015.06.011
Korres, 2013, Storage and distribution of biomethane, 183
Cozma, 2015, Modeling and simulation of high pressure water scrubbing technology applied for biogas upgrading, Clean Technol Environ Policy, 17, 373, 10.1007/s10098-014-0787-7
Budzianowski, 2017, Power requirements of biogas upgrading by water scrubbing and biomethane compression: comparative analysis of various plant configurations, Energy Convers Manage, 10.1016/j.enconman.2016.03.018
Budzianowski, 2012, Benefits of biogas upgrading to biomethane by high-pressure reactive solvent scrubbing, Biofuels, Bioprod Biorefin, 6, 12, 10.1002/bbb.334
Montuori, 2014, Integration of renewable energy in microgrids coordinated with demand response resources: economic evaluation of a biomass gasification plant by Homer simulator, Appl Energy, 132, 15, 10.1016/j.apenergy.2014.06.075
Bartłomiejczyk G. Tankowanie pojazdów gazem ziemnym. CNG - konkurencja na rynku. Nafta and Gaz Biznes; 2005.
Łaciak, 2012, Problemy techniczne i technologiczne związane z rozładunkiem LNG, Nafta-Gaz, 68, 430
Europejska Komisja. Zintegrowane zapobieganie zanieczyszczeniom i ich kontrola. Dokument Referencyjny dotyczący Najlepszych Dostępnych Technik dla emisji z magazynowania; 2006.
Kunstman, 2009, Geologiczne i górnicze aspekty budowy magazynowych kawern solnych, Przegląd Geol, 57
Suwansri, 2014, A biomethane solution for domestic cooking in Thailand, Energy Sustain Develop, 23, 68, 10.1016/j.esd.2014.08.003
Valorgas project. D5.2: Evaluation of Existing Low Cost Gas Bottling Systems for Vehicles Use Adaption in Developing Economies.
Gallo, 2009, Fuel gas storage and separations by Metal-organic frameworks: simulated adsorption isotherms for H2 and CH4 and their equimolar mixture, J Phys Chem C, 113, 6634, 10.1021/jp809539w
Wilmer, 2013, Gram-scale, high-yield synthesis of a robust metal-organic framework for storing methane and other gases, Energy Environ Sci, 6, 1158, 10.1039/c3ee24506c
Wen, 2014, A porous metal-organic framework with an elongated anthracene derivative exhibiting a high working capacity for the storage of methane, J Mater Chem A, 2, 11516, 10.1039/c4ta01860e
Gómez-Gualdrón, 2014, Exploring the limits of methane storage and delivery in nanoporous materials, J Phys Chem C, 118, 6941, 10.1021/jp502359q
Wang, 2007, Comparative molecular simulation study of methane adsorption in metal - organic frameworks, Energy Fuels, 21, 953, 10.1021/ef060578f
Lozano-Castelló, 2002, Advances in the study of methane storage in porous carbonaceous materials, Fuel, 81, 1777, 10.1016/S0016-2361(02)00124-2
Policicchio, 2013, Higher methane storage at low pressure and room temperature in new easily scalable large-scale production activated carbon for static and vehicular applications, Fuel, 104, 813, 10.1016/j.fuel.2012.07.035
Wang, 2013, Gas storage in renewable bioclathrates, Energy Environ Sci, 6, 105, 10.1039/C2EE23565J
Beckner, 2015, Adsorbed methane storage for vehicular applications, Appl Energy, 149, 69, 10.1016/j.apenergy.2015.03.123
Zhang, 2015, A thermodynamic tank model for studying the effect of higher hydrocarbons on natural gas storage in metal-organic frameworks, Energy Environ Sci, 8, 1501, 10.1039/C5EE00808E
Blanco, 2016, A comparative study of several microporous materials to store methane by adsorption, Microporous Mesoporous Mater, 224, 323, 10.1016/j.micromeso.2016.01.002
Bimbo, 2015, High volumetric and energy densities of methane stored in nanoporous materials at ambient temperatures and moderate pressures, Chem Eng J, 272, 38, 10.1016/j.cej.2015.02.088
Darabi Mahboub, 2016, Enhancement of methane storage on activated carbons in the presence of water, Energy Sour, A: Recov, Utiliz, Environ Effects, 38, 75, 10.1080/15567036.2012.750402
Beckner, 2016, A pilot study of activated carbon and metal-organic frameworks for methane storage, Appl Energy, 162, 506, 10.1016/j.apenergy.2015.10.110
Hassani, 2016, A comparative theoretical study of methane adsorption on the nitrogen, boron and lithium doped graphene sheets including density functional dispersion correction, Comput Theor Chem, 1084, 43, 10.1016/j.comptc.2016.02.019
Sun, 2003, Natural gas storage in hydrates with the presence of promoters, Energy Convers Manage, 44, 2733, 10.1016/S0196-8904(03)00048-7
Hao, 2008, Evaluation and analysis method for natural gas hydrate storage and transportation processes, Energy Convers Manage, 49, 2546, 10.1016/j.enconman.2008.05.016
Chari, 2013, Sharma DVSGK, Prasad PSR, Murthy SR. Methane hydrates formation and dissociation in nano silica suspension, J Natur Gas Sci Eng, 11, 7, 10.1016/j.jngse.2012.11.004
Yang, 2016, Rapid and repeatable methane storage in clathrate hydrates using gel-supported surfactant dry solution, Chem Eng Sci, 146, 10, 10.1016/j.ces.2016.01.035
Veluswamy, 2016, Rapid methane hydrate formation to develop a cost effective large scale energy storage system, Chem Eng J, 290, 161, 10.1016/j.cej.2016.01.026
Chong, 2016, Review of natural gas hydrates as an energy resource: prospects and challenges, Appl Energy, 162, 1633, 10.1016/j.apenergy.2014.12.061
Song, 2015, Evaluation of gas production from methane hydrates using depressurization, thermal stimulation and combined methods, Appl Energy, 145, 265, 10.1016/j.apenergy.2015.02.040
Sloan, 2003, Fundamental principles and applications of natural gas hydrates, Nature, 426, 353, 10.1038/nature02135
Lang, 2010, Intensification of methane and hydrogen storage in clathrate hydrate and future prospect, J Nat Gas Chem, 19, 203, 10.1016/S1003-9953(09)60079-7
Singh, 2016, Biomethane: an efficient source for the production of CNG and formaldehyde, Int J Sci Eng Appl Sci, 2, 466
Yeon, 2009, Enhanced methane storage of chemically and physically activated carbide-derived carbon, J Power Sources, 191, 560, 10.1016/j.jpowsour.2009.02.019
Budzianowski, 2011, Can ‘negative net CO2 emissions’ from decarbonised biogas-to-electricity contribute to solving Poland’s carbon capture and sequestration dilemmas?, Energy, 36, 6318, 10.1016/j.energy.2011.09.047
Bekkering, 2013, Balancing gas supply and demand with a sustainable gas supply chain - a study based on field data, Appl Energy, 111, 842, 10.1016/j.apenergy.2013.05.073
Budzianowski, 2017, Total Chain Integration of sustainable biorefinery systems, Appl Energy
DOE/NETL. An Engineering-Economic Analysis of Syngas Storage. DOE/NETL-2008/1331. Final Report; 2008.
Baker M. Task 3: LNG Storage Tank Cost Analysis; 2013.
Nour, 2009, Enhanced discharge of ANG storage for vehicle use, Int J Eng Technol, 9, 6
Khamehchi, 2013, Selection of the best efficient method for natural gas storage at high capacities using TOPIS method, Gas Process J, 1, 9
Krich K. Biomethane from dairy waste - a sourcebook for the production and use of renewable natural gas in California; 2005.
Tyldesley A. Major hazards of natural gas storage. Symposium Series No. 156. Hazards XXII. ICHemE; 2011. <https://www.icheme.org/~/media/Documents/Subject%20Groups/Safety_Loss_Prevention/Hazards%20Archive/XXII/XXII-Paper-53.pdf> [accessed: March 2016].
Health and Safety Executive. The health and safety risks and regulatory strategy related to energy developments. An expert report. Government’s Energy Review; 2006.
Kwiatkowski, 2013, Magazynowanie metanu w porowatych materiałach węglowych, Przemysł Chemiczny, 92, 629
Sedlaczek, 2010, Charakterystyka zagrożeń związanych z transportem i magazynowaniem skroplonego gazu ziemnego - LNG, Wiertnictwo Nafta Gaz, 27, 601
Vasiliew, 2000, Adsorbed natural gas storage and transportation vessels, Int J Therm Sci, 39, 9
Warowy, 2007, Wybrane nowe technologie w transporcie i zastosowaniach energetycznych gazu ziemnego, Wiertnictwo Nafta i Gaz, 24, 901
Own calculations based on Bipartisan Policy Center. Natural Gas Infrastructure and Methane Emissions. Energy & Infrastructure Program; 2014.
Khokhar, 1998
European Biogas Association, 2013
McGuire and White. Liquefied gas handling principles on ships and in terminals, Witherby & Company Limited; 2008. <http://www.pfri.uniri.hr/knjiznica/download/Lghp%28siggto%29.pdf>.
http://www.afdc.energy.gov/vehicles/natural_gas_cylinder.html [accessed: March 2016].
https://cng.auto.pl/bezpieczenstwo-cng [accessed: January 2016].
Ahman, 2010, Biomethane in the transport sector - an appraisal of the forgotten option, Energy Policy, 38, 208, 10.1016/j.enpol.2009.09.007
California Energy Commission. California natural gas storage utilization and economic analysis. Project report; 2008.
Wodołażski, 2013, Wykorzystanie biometanu jako paliwa w transporcie samochodowym efektywnym sposobem ograniczenia emisji zanieczyszczeń do powietrza, JEcolHealth, 17
Zakaria, 2011, The performance of commercial activated carbon adsorbent for adsorbed natural gas storage, IJRRAS, 9, 225
Lord AS. Overview of geologic storage of natural gas with an emphasis on assessing the feasibility of storing hydrogen. Sandia Report. <http://prod.sandia.gov/techlib/access-control.cgi/2009/095878.pdf> [accessed: March 2016].
Madan Kapoor R, Vijay VK. Biowaste as feedstock for 2nd generation. Evaluation of existing low cost gas bottling systems for vehicles use adaption in developing economies. Foundation for Innovation and Technology Transfer. Seventh Framework Programme Theme Energy. 2009.3.2.2; 2010.
http://cng-lng.pl/motoryzacja/technika/Zbiorniki-CNG,artykul,5635.html [accessed: March 2016].
http://energy.gov/sites/prod/files/2015/06/f22/Appendix%20B-%20Natural%20Gas_1.pdf [accessed: March 2016].
http://www.cfr.org/natural-gas/liquefied-natural-gas-potential-terrorist-target/p9810 [accessed: March 2016].
www.ngva.eu/downloads/X-STORE_01-2010.pdf [accessed: March 2016].
Dietrich, 2013, Gazociągi o zminimalizowanym ryzyku, Rynek Polskiej Nafty i Gazu, 76
http://www.cituk-online.com/acatalog/Storage_Tank_Inspection.html [accessed: March 2016].
http://www.ipt.ntnu.no/~ngh/library/paper4/paper4.html [accessed: February 2016].
Filar, 2010, Analiza wpływu wytworzenia zapasu obowiązkowego na koszt świadczenia usług magazynowych, Nafta-Gaz, 66, 903
Mannel D, Puckett D. Transportation and storage of natural gas hydrates; 2008. <http://ou.edu/class/che-design/a-design/projects-2008/Gas%20Hydrate%20Transportation.pdf>.
Gbaruko, 2007, Gas hydrates and clathrates: flow assurance, environmental and economic perspectives and the Nigerian liquefied natural gas project, J Petrol Sci Eng, 56, 192, 10.1016/j.petrol.2005.12.011
Bipartisan Policy Center. Natural gas infrastructure and methane emissions. Energy & Infrastructure Program; 2014.
Le Fevre, 2013
Tusiani, 2007
Conley, 2015, Methane emissions from the 2015 Aliso Canyon blowout in Los Angeles CA, Science
BAT dla emisji z magazynowania; 2006.
European Gas Pipeline Incident Data Group. Gas Pipeline Incidents. In: 9th Report of the European Gas Pipeline Incident Data Group (period 1970–2013). Doc. Number EGIG 14.R.0403; 2015.
Russo, 2014, Derivation of risk areas associated with high-pressure natural-gas pipelines explosions including effects on structural components, Chem Eng Trans, 36, 289
Healey M. Underground gas storage in cheshire - the Costain experience. Constain Natural Resources. Engineering Tomorrow…Today; 2008.
Papavinasam, 2014, 91
Lebel, 2013, Thermal ageing process at laboratory scale to evaluate the lifetime of Liquefied Natural Gas storage loading/unloading materials, Mater Des, 44, 283, 10.1016/j.matdes.2012.07.043
GASREC. Safety Data Sheet. <http://gasrec.co.uk/wp-content/uploads/2014/02/Safety-Data-Sheet-LBM-3.pdf> [accessed: March 2016].
European Commission. Consultation on an EU strategy for liquefied natural gas and gas storage. <https://ec.europa.eu/LNG%20consultation%20-%20publicationpdf> [accessed: March 2016].
Rejman-Burzyńska, 2013, Nowy substytut gazu ziemnego. Biometan z biogazu, Rynek Polskiej Nafty i Gazu, 98
http://economics.acadiau.ca/tl_files/sites/economics/resources/Theses/William%20Turner%20Thesis.pdf [accessed: March 2016].
Hoyle, 2016
http://www.cngschool.com/cng-tank-price-list [accessed: February 2016].
Calculated based on data from California Energy Commission. California natural gas storage utilization and economic analysis. Project report; 2008.
http://www.gaz-system.pl/nasze-inwestycje/najczesciej-zadawane-pytania [accessed: March 2016].
Jellicoe M, Delgado MS. Quantifying the effects of underground natural gas storage on nearby residents. 2014 NAREA Annual Meeting. June 1–4. 2014. <http://www.narea.org/2014/workshop/WorkshopPresentations/JELLICOE_NAREA_POST_CONFERENCE_2014.pdf>.
Willington C. Gas pipeline environmental impact assessment scoping report. An RWE company. Version 1.2; 2010.
Leszczuk K. Przegląd Pożarniczy <http://www.ppoz.pl/ratownictwo-i-ochrona-ludnosci/932-bezpieczne-lng> [accessed: March 2016].
http://www.polskielng.pl/fileadmin/pliki/newsy/pl/FLARA/PE-BI-00-5-Z-2__Zal.1_Inform.publ._o_zagr._zapob._awariom_i_ratown.-wyd.....pdf. Informacja publiczna o zagrożeniach, zapobieganiu awariom i ratownictwie na Terminalu LNG [accessed: March 2016].
Łaciak, 2010, Problemy Bezpieczeństwa Technicznego i Charakterystyka Zagrożeń Związanych z Terminalem Rozładunkowym LNG, Wiertnictwo Nafta Gaz, 27, 701
Patrizio, 2015, Biomethane as transport fuel - a comparison with other biogas utilization pathways in northern Italy, Appl Energy, 157, 25, 10.1016/j.apenergy.2015.07.074
Cucchiella, 2016, Technical and economic analysis of biomethane: a focus on the role of subsidies, Energy Convers Manage, 119, 338, 10.1016/j.enconman.2016.04.058
Raheem, 2016, Bioenergy from anaerobic digestion in Pakistan: potential, development and prospects, Renew Sustain Energy Rev, 59, 264, 10.1016/j.rser.2016.01.010
Chen, 2015, Biogas dry reforming for syngas production: Catalytic performance of nickel supported on waste-derived SiO2, Catal Sci Technol, 5, 860, 10.1039/C4CY01126K
Ras, 2014, Oxidative coupling of methane in small scale parallel reactors, Top Catal, 57, 1392, 10.1007/s11244-014-0310-8
Barbato, 2012, High pressure methane combustion over perovskyte catalyst, Ind Eng Chem Res, 51, 7547, 10.1021/ie201736p
Julklang, 2015, Effect of process parameters on energy performance of spray drying with exhaust air heat recovery for production of high value particles, Appl Energy, 151, 285, 10.1016/j.apenergy.2015.04.069
Li, 2015, Building green supply chains in eco-industrial parks towards a green economy: barriers and strategies, J Environ Manage, 162, 158, 10.1016/j.jenvman.2015.07.030
Ostergaard, 2012, Comparing electricity, heat and biogas storages’ impacts on renewable energy integration, Energy, 37, 255, 10.1016/j.energy.2011.11.039
Ahern, 2015, A perspective on the potential role of renewable gas in a smart energy island system, Renewable Energy, 78, 648, 10.1016/j.renene.2015.01.048
Hossain, 2016, Role of smart grid in renewable energy: an overview, Renew Sustain Energy Rev, 60, 1168, 10.1016/j.rser.2015.09.098
Milewski, 2014, Seasonal thermal energy storage - a size selection, Appl Mech Mater, 467, 270, 10.4028/www.scientific.net/AMM.467.270
Milewski, 2014, STES-typical scenarios for heat accumulator cooperation, Energy Procedia, 50, 414, 10.1016/j.egypro.2014.06.050
Richter, 2012, Utilities’ business models for renewable energy: a review, Renew Sustain Energy Rev, 16, 2483, 10.1016/j.rser.2012.01.072
Heffels, 2012, Direct marketing of electricity from biogas and biomethane: an economic analysis of several business models in Germany, J Manage Control, 23, 53, 10.1007/s00187-012-0153-z
Budzianowski, 2015, Economic analysis of biomethane and bioelectricity generation from biogas using different support schemes and plant configurations, Energy, 88, 658, 10.1016/j.energy.2015.05.104
Budzianowski, 2012, Sustainable biogas energy in Poland: prospects and challenges, Renew Sustain Energy Rev, 16, 342, 10.1016/j.rser.2011.07.161
Gallo, 2015, Analysis of potential GHG emissions reductions from methane recovery in livestock farming, Int J Global Warm, 8, 516, 10.1504/IJGW.2015.073053
Budzianowski, 2012, Negative carbon intensity of renewable energy technologies involving biomass or carbon dioxide as inputs, Renew Sustain Energy Rev, 16, 6507, 10.1016/j.rser.2012.08.016
Shukla, 2015, Removal of carbon dioxide from the atmosphere to reduce global warming: a modelling study, Int J Global Warm, 7, 270, 10.1504/IJGW.2015.067754
Budzianowski, 2012, Value-added carbon management technologies for low CO2 intensive carbon-based energy vectors, Energy, 41, 280, 10.1016/j.energy.2012.03.008
Zoss, 2016, Modeling a power-to-renewable methane system for an assessment of power grid balancing options in the Baltic States’ region, Appl Energy, 170, 278, 10.1016/j.apenergy.2016.02.137
IEA (International Energy Agency). Technology Roadmap. Energy storage; 2014.
Pieri, 2015, Integrated environmental quality monitoring around an underground methane storage station, Chemosphere, 131, 10.1016/j.chemosphere.2015.03.009