Giuseppe Etiope, Agnieszka Drobniak, Arndt Schimmelmann: Natural seepage of shale gas and the origin of „eternal flames“ in the Northern Appalachian Basin, USA. In: Marine and Petroleum Geology, 43, 2013, S. 178–186, doi:10.1016/j.marpetgeo.2013.02.009.
Thomas Shirley: The description of a well, and earth in Lanchashire, taking fire by a candle approached to it. In: Philosophical Transactions of the Royal Society of London. 2, 1666, S. 482–484, doi:10.1098/rstl.1666.0028.
Jaime Wisniak: William Henry: His Achievements and His Law. In: The Chemical Educator. 6, 2001, S. 62–68, doi:10.1007/s00897000449a.
X. Xiong, F. Weng, Q. Liu, E. Olsen: Space-borne observation of methane from atmospheric infrared sounder version 6: validation and implications for data analysis. In: Atmospheric Measurement Techniques Discussions. 8, 2015, S. 8563–8597, doi:10.5194/amtd-8-8563-2015.
U. Deppenmeier, V. Müller: Life close to the thermodynamic limit: how methanogenic archaea conserve energy. In: Günter Schäfer, Harvey S. Penefsky (Hrsg.): Bioenergetics: Energy Conservation and Conversion. Results and Problems in Cell Differentiation, Volume 45. Springer 2008, ISBN 978-3-540-78622-1, S. 123–152. PMID 17713742; doi:10.1007/400_2006_026.
David M. Karl, Lucas Beversdorf u. a.: Aerobic production of methane in the sea. In: Nature Geoscience, 1, 2008, S. 473–478, doi:10.1038/ngeo234.
Siddhesh S. Kamat, Howard J. Williams u. a.: The catalytic mechanism for aerobic formation of methane by bacteria. In: Nature, 497, 2013, S. 132–136, doi:10.1038/nature12061
L.A. Sromovsky, E. Karkoschka, P.M. Fry, H.B. Hammel, I. de Pater, K. Rages: Methane depletion in both polar regions of Uranus inferred from HST/STIS and Keck/NIRC2 observations. In: Icarus. 238, 2014, S. 137–155, doi:10.1016/j.icarus.2014.05.016.
J. H. Waite: Cassini Ion and Neutral Mass Spectrometer: Enceladus Plume Composition and Structure. In: Science. 311, 2006, S. 1419–1422, doi:10.1126/science.1121290.
M. J. Mumma, G. L. Villanueva, R. E. Novak, T. Hewagama, B. P. Bonev, M. A. DiSanti, A. M. Mandell, M. D. Smith: Strong Release of Methane on Mars in Northern Summer 2003. In: Science. 323, 2009, S. 1041–1045, doi:10.1126/science.1165243.
J. Hunter Waite u. a.: Cassini finds molecular hydrogen in the Enceladus plume: Evidence for hydrothermal processes. In: Science. 356, 2017, S. 155–159, doi:10.1126/science.aai8703.
Colin Campbell, Albert Parker: CXXXVI.—The preparation and analysis of methane. In: J. Chem. Soc., Trans.. 103, 1913, S. 1292–1297, doi:10.1039/CT9130301292.
Rolf Prydz, Robert D. Goodwin: Experimental melting and vapor pressures of methane. In: The Journal of Chemical Thermodynamics. Band4, Nr.1, 1972, S.127–133, doi:10.1016/S0021-9614(72)80016-8.
S. A. C. Clark, T. J. Reddish, C. E. Brion, E. R. Davidson, R. F. Frey: The valence orbital momentum distributions and binding energy spectra of methane by electron momentum spectroscopy: Quantitative comparisons using near Hartree-Fock limit and correlated wavefunctions. In: Chemical Physics, 1990, Band 143, Nr. 1, S. 1–10, doi:10.1016/0301-0104(90)85001-D.
C. Roche, J. P Champion: Analysis of dyad – dyad transitions of 12CH4 and 13CH4. In: Canadian Journal of Physics, 1991, Band 69, Nr. 1, S. 40–51, doi:10.1139/p91-007.
J.-C. Hilico, J. P. Champion, S. Toumi, V. G. Tyuterev, S. A. Tashkun: New Analysis of the Pentad System of Methane and Prediction of the (Pentad-Pentad) Spectrum. In: Journal of Molecular Spectroscopy, 1994, Band 168, Nr. 2, S. 455–476, doi:10.1006/jmsp.1994.1293.
Hans-Martin Niederer, Sieghard Albert, Sigurd Bauerecker, Vincent Boudon, Jean-Paul Champion, Martin Quack: Global Analysis of the Infrared Spectrum of 13CH4: Lines in the Region 0 to 3200 cm−1. In: Chimia, 2008, Band 62, Nr. 4, S. 273–276, doi:10.2533/chimia.2008.273.
S. Albert, S. Bauerecker, V. Boudon, L. R. Brown, J.-P. Champion, M. Loëte, A. Nikitin, M. Quack: Global analysis of the high resolution infrared spectrum of methane 12CH4 in the region from 0 to 4800 cm−1. In: Chemical Physics, 2009, Band 356, Nr. 1–3, S. 131–146, doi:10.1016/j.chemphys.2008.10.019.
Geoffrey A. Ozin, John G. McCaffrey, J. Mark Parnis: Photochemistry of Transition-Metal Atoms: Reactions with Molecular Hydrogen and Methane in Low-Temperature Matrices. In: Angewandte Chemie International Edition in English. 25, 1986, S. 1072–1085, doi:10.1002/anie.198610721.
Ayusman Sen, Mark A. Benvenuto, Minren Lin, Alan C. Hutson, Naomi Basickes: Activation of Methane and Ethane and Their Selective Oxidation to the Alcohols in Protic Media. In: Journal of the American Chemical Society. 116, 1994, S. 998–1003, doi:10.1021/ja00082a022.
Duy Khoe Dinh, Dae Hoon Lee, Young-Hoon Song, Sungkwon Jo, Kwan-Tae Kim, Muzammil Iqbal, Hongjae Kang: Efficient methane-to-acetylene conversion using low-current arcs. In: RSC Advances. 9, 2019, S. 32403–32413, doi:10.1039/c9ra05964d.
F. Endter: Die technische Synthese von Cyanwasserstoff aus Methan und Ammoniak ohne Zusatz von Sauerstoff, Chemieingenieurtechnik, Nr. 30, 1958, S. 305–310, doi:10.1002/cite.330300506.
Ernst Bartholomé: Probleme großtechnischer Anlagen zur Erzeugung von Acetylen nach dem Sauerstoff-Verfahren. In: Chemie Ingenieur Technik – CIT. 26, 1954, S. 253–258, doi:10.1002/cite.330260503.
R. S. Hanson, T. E. Hanson: Methanotrophic bacteria. In: Microbiological Reviews. 60, 1996, S. 439–471, doi:10.1128/mr.60.2.439-471.1996.
D. Brankovits u. a.: Methane- and dissolved organic carbon-fueled microbial loop supports a tropical subterranean estuary ecosystem. In: Nature Communications. 8, 2017, S. 1–12, doi:10.1038/s41467-017-01776-x.
Matthew O. Ross, Amy C. Rosenzweig: A tale of two methane monooxygenases. In: JBIC Journal of Biological Inorganic Chemistry. 22, 2017, S. 307–319, doi:10.1007/s00775-016-1419-y.
T. Klintzsch, G. Langer, G. Nehrke, A. Wieland, K. Lenhart, F. Keppler: Methane production by three widespread marine phytoplankton species: release rates, precursor compounds, and potential relevance for the environment. In: Biogeosciences, 16, 2019, S. 4129–4144, doi:10.5194/bg-16-4129-2019.
R B Jackson, M Saunois, P Bousquet, J G Canadell, B Poulter, A R Stavert, P Bergamaschi, Y Niwa, A Segers, A Tsuruta: Increasing anthropogenic methane emissions arise equally from agricultural and fossil fuel sources. In: Environmental Research Letters. Band15, Nr.7, Juli 2020, S.071002, doi:10.1088/1748-9326/ab9ed2.
Marielle Saunois u. a.: The Global Methane Budget 2000–2017. In: Earth System Science Data. Band12, Nr.3, 15. Juli 2020, S.1561–1623, doi:10.5194/essd-12-1561-2020.
Benjamin Hmiel u. a.: Preindustrial 14CH4 indicates greater anthropogenic fossil CH4 emissions. In: Nature. 578, 2020, S. 409–412, doi:10.1038/s41586-020-1991-8.
A. R. Brandt u. a.: Methane Leaks from North American Natural Gas Systems. In: Science. 343.6172, 2014, S. 733–735, doi:10.1126/science.1247045.
Yuzhong Zhang u. a.: Quantifying methane emissions from the largest oil-producing basin in the United States from space. In: Science Advances. 6, 2020, S. eaaz5120, doi:10.1126/sciadv.aaz5120.
Robert W. Howarth: Ideas and perspectives: is shale gas a major driver of recent increase in global atmospheric methane?. In: Biogeosciences. 16, 2019, S. 3033, doi:10.5194/bg-16-3033-2019.
Xinrong Ren u. a.: Methane Emissions from the Marcellus Shale in Southwestern Pennsylvania and Northern West Virginia Based on Airborne Measurements. In: Journal of Geophysical Research: Atmospheres. 124, 2019, S. 1862–1878, doi:10.1029/2018JD029690.
Katrin Kohnert, Andrei Serafimovich, Stefan Metzger, Jörg Hartmann, Torsten Sachs: Strong geologic methane emissions from discontinuous terrestrial permafrost in the Mackenzie Delta, Canada. In: Scientific Reports. 7, 2017, S. 5828, doi:10.1038/s41598-017-05783-2.
S. Conley, G. Franco, I. Faloona, D. R. Blake, J. Peischl, T. B. Ryerson: Methane emissions from the 2015 Aliso Canyon blowout in Los Angeles, CA. In: Science. 351, 2016, S. 1317–1320, doi:10.1126/science.aaf2348.
Sudhanshu Pandey u. a.: Satellite observations reveal extreme methane leakage from a natural gas well blowout. In: Proceedings of the National Academy of Sciences. 116, 2019, S. 26376, doi:10.1073/pnas.1908712116.
Margarida R. G. Maia, António J. M. Fonseca, Hugo M. Oliveira, Carla Mendonça, Ana R. J. Cabrita: The Potential Role of Seaweeds in the Natural Manipulation of Rumen Fermentation and Methane Production. In: Scientific Reports. 6:32321, 2016, doi:10.1038/srep32321.
Robert D. Kinley, Rocky de Nys, Matthew J. Vucko, Lorenna Machado, Nigel W. Tomkins: The red macroalgae Asparagopsis taxiformis is a potent natural antimethanogenic that reduces methane production during in vitro fermentation with rumen fluid. In: Animal Production Science. 56, 2016, S. 282–289, doi:10.1071/AN15576.
Breanna M. Roque, Joan K. Salwen, Rob Kinley, Ermias Kebreab: Inclusion of Asparagopsis armata in lactating dairy cows’ diet reduces enteric methane emission by over 50 percent. In: Journal of Cleaner Production. 234, 2019, S. 132, doi:10.1016/j.jclepro.2019.06.193.
Breanna M. Roque, Marielena Venegas, Robert D. Kinley, Rocky de Nys, Toni L. Duarte, Xiang Yang, Ermias Kebreab, James E. Wells: Red seaweed (Asparagopsis taxiformis) supplementation reduces enteric methane by over 80 percent in beef steers. In: PLOS ONE. 16, 2021, S. e0247820, doi:10.1371/journal.pone.0247820.
Victoria Baca-González, Patricia Asensio-Calavia, Sergio González-Acosta, Jose Manuel Pérez de la Lastra, Antonio Morales de la Nuez: Are Vaccines the Solution for Methane Emissions from Ruminants? A Systematic Review. In: Vaccines. 8, 2020, S. 460, doi:10.3390/vaccines8030460.
Julien Mouli-Castillo, Georgina Orr, James Thomas, Nikhil Hardy, Mark Crowther, R. Stuart Haszeldine, Mark Wheeldon, Angus McIntosh: A comparative study of odorants for gas escape detection of natural gas and hydrogen. In: International Journal of Hydrogen Energy. 46, 2021, S. 14881–14893, doi:10.1016/j.ijhydene.2021.01.211.
Michael J. Economides, Kai Sun, Gloria Subero: Compressed Natural Gas (CNG): An Alternative to Liquefied Natural Gas (LNG). In: SPE Production & Operations. 21, 2006, S. 318–324, doi:10.2118/92047-PA.
Rodolfo Taccani, Gabriele Maggiore, Diego Micheli: Development of a Process Simulation Model for the Analysis of the Loading and Unloading System of a CNG Carrier Equipped with Novel Lightweight Pressure Cylinders. In: Applied Sciences. 10, 2020, S. 7555, doi:10.3390/app10217555.
eia.gov
Natural Gas Consumption, bei U.S. Energy Information Administration, abgerufen am 12. Juli 2021.
History, bei naturalgas.org, abgerufen am 17. Juli 2021.
nih.gov
ncbi.nlm.nih.gov
U. Deppenmeier, V. Müller: Life close to the thermodynamic limit: how methanogenic archaea conserve energy. In: Günter Schäfer, Harvey S. Penefsky (Hrsg.): Bioenergetics: Energy Conservation and Conversion. Results and Problems in Cell Differentiation, Volume 45. Springer 2008, ISBN 978-3-540-78622-1, S. 123–152. PMID 17713742; doi:10.1007/400_2006_026.
Tim Searchingen u. a.: Opportunities to Reduce Methane Emissions from Global Agriculture. 2021, Discussion Paper, Princeton University, Cornell University. (pdf).
raketenflugplatz-berlin.de
Uwe W. Jack: Johannes Winkler. In: raketenflugplatz-berlin.de. Abgerufen am 16. August 2023.
August Wilhelm von Hofmann: On the action of trichloride of phosphorus on the salts of the aromatic monoamines. In: Proceedings of the Royal Society of London, Band 15, S. 55–62; Fußnoten: S. 57–58(online).
Standardreaktionsenthalpie für die Verbrennung von Methan und diversen Erdölprodukten, vgl. S. 3 ff. in: Herbert Mayr: Vorlesung 9: Erdölverarbeitung. (PDF; 68 kB). LMU München: Physikalisch-organische Chemie, 2006
unternehmensberatung-babel.de
Olaf Babel: Dampfdruckgleichung. In: Industriegase Lexikon. Abgerufen am 24. Juli 2024.
web.archive.org
G. Myhre u. a.: Anthropogenic and Natural Radiative Forcing. In: Climate Change 2013: The Physical Science Basis. Contribution of Working Group I to the Fifth Assessment Report of the Intergovernmental Panel on Climate Change. Cambridge University Press, Cambridge / New York 2013, S. 731, (PDF) (Memento vom 6. Februar 2017 im Internet Archive).