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1

Kushnirov, V. V. Retrogradnye gazozhidkostnye sistemy v nedrakh. Tashkent: Izd-vo "Fan" Uzbekskoĭ SSR, 1987.

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2

Zibert, G. K. Perspektivnye tekhnologii i oborudovanie dli︠a︡ podgotovki i perepodgotovki uglevodorodnykh gazov i kondensata: Prospective Tecnologies and Equipment for Preparation and Processing Hydrocarbon Gases and Condensate. Moskva: Nedra, 2005.

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3

Ė, Ramazanova Ė. Prikladnai͡a︡ termodinamika neftegazokondensatnykh mestorozhdeniĭ. Moskva: "Nedra", 1986.

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4

Dolgushin, N. V. Terminologii︠a︡ i osnovnye polozhenii︠a︡ tekhnologii gazokondensatnykh issledovaniĭ = Terminology and basic principles of technique for gas condensate research. Moskva: Nedra, 2004.

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5

Serebri︠a︡kov, A. O. Sinergetika razvedki i razrabotki nefti︠a︡nykh i gazovykh mestorozhdeniĭ-gigantov s kislymi komponentami: Monografii︠a︡. Astrakhanʹ: Astrakhanskiĭ gos. universitet, 2006.

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6

Krylov, G. V., and I︠U︡ K. Vasilʹchuk. Kriosfera neftegazokondensatnykh mestorozhdeniĭ poluostrova I︠A︡mal: Cryosphere of oil and gas condensate fields of Yamal Peninsula. Ti︠u︡menʹ: Ti︠u︡menNIIgiprogaz, 2006.

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7

Gasumov, R. A. Geologii︠a︡, burenie i razrabotka gazovykh i gazokondensatnykh mestorozhdeniĭ. Stavropolʹ: SevKavNIPIgaz, 2008.

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8

P, Zaporozhet︠s︡ E., and Valiullin I. M, eds. Podgotovka i pererabotka uglevodorodnykh gazov i kondensata: Tekhnologii i oborudovanie, spravochnoe posobie. 2nd ed. Moskva: Nedra, 2008.

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9

Vysot͡skiĭ, I. V. Formirovanie nefti͡anykh, gazovykh i kondensatnogazovykh mestorozhdeniĭ. Moskva: "Nedra", 1986.

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10

I͡Azik, A. V. Sistemy i sredstva okhlazhdenii͡a prirodnogo gaza. Moskva: "Nedra", 1986.

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11

Aĭdosov, A. Teoreticheskie osnovy prognozirovanii︠a︡ prirodnykh prot︠s︡essov i ėkologicheskoĭ obstanovki okruzhai︠u︡shcheĭ sredy. Almaty: Qazaq universitetī, 2000.

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12

Edwards, T. J. Phase behaviour studies for optimising hydrocarbon liquid production from the North West Shelf gas condensate fields: Results of research carried out as MERIWA Project No. M150 and ERDC Project No. 1475 at the School of Mathematical and Physical Sciences, Murdoch University, Western Astralia. East Perth, WA: Minerals and Energy Research Institute of Western Australia, 1995.

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13

Kalugina, N. P. Infrakrasnai͡a︡ spektrometrii͡a︡ pri geokhimicheskikh issledovanii͡a︡kh nefteĭ i kondensatov: Na primere mestorozhdeniĭ Turkmenistana. Ashkhabad: Ylym, 1986.

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14

A, Rumi︠a︡nt︠s︡ev A., and Efendiev Ch A, eds. O metodakh, primeni︠a︡emykh dli︠a︡ izuchenii︠a︡ prirody solnechnykh i︠a︡vleniĭ. Baku: Ėlm, 2005.

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15

N, Melikhov V., and Nauchno-issledovatelʹskiĭ institut nauchno-tekhnicheskoĭ informat͡s︡ii i tekhniko-ėkonomicheskikh issledovaniĭ (Turkmen S.S.R.), eds. Poiski i razvedka slozhnoėkranirovannykh lovushek i zalezheĭ gaza na Dauletabad-Donmezskom mestorozhdenii. Ashkhabad: TurkmenNIINTI, 1990.

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16

F, Perepelichenko V., Institut geologii i razrabotki gori͡u︡chikh iskopaemykh (Russia), and Volgogradskiĭ gosudarstvennyĭ nauchno-issledovatelʹskiĭ i proektnyĭ institut nefti͡a︡noĭ i gazovoĭ promyshlennosti., eds. Razrabotka i ėkspluatat͡s︡ii͡a︡ neftegazokondensatnykh mestorozhdeniĭ Prikaspii͡a︡: Sbornik nauchnykh trudov. Volgograd: Volgogradskiĭ gos. nauchno-issl. i proektnyĭ in-t nefti͡a︡noĭ i gazovoĭ promyshl., 1990.

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17

L, Surguchev M., and Baishev B. T, eds. Teorii͡a︡ i praktika razrabotki maloėffektivnykh neftegazokondensatnykh mestorozhdeniĭ. Moskva: Vses. neftegazovyĭ nauchno-issl. in-t im. A.P. Krylova, 1991.

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18

A, Lanchakov G., Stavit︠s︡kiĭ V. A, and Gazprom dobycha Urengoĭ (Firm), eds. Problemy osvoenii︠a︡ mestorozhdeniĭ Urengoĭskogo kompleksa. Moskva: Nedra-Biznest︠s︡entr, 2008.

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19

I, Murin V., Gosudarstvennyĭ gazovyĭ kont͡s︡ern "Gazprom" (Russia), NPO Soi͡u︡zgaztekhnologii͡a︡, and Vsesoi͡u︡znyĭ nauchno-issledovatelʹskiĭ institut prirodnykh gazov., eds. Tekhnika i tekhnologii͡a︡ pererabotki gaza i kondensata. Moskva: Vses. nauchno-issl. in-t prirodnykh gazov, 1990.

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20

Sovremennoe sostoi︠a︡nie i perspektivy razvitii︠a︡ gazokondensatnykh i termodinamicheskikh issledovaniĭ: Sbornik nauchnykh trudov. Moskva: VNIIGAZ, 2005.

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21

M, Ter-Sarkisov R., Gosudarstvennyĭ gazovyĭ kont͡s︡ern "Gazprom" (Russia), Nauchno-proizvodstvennoe obʺedinenie "Soi͡u︡zgaztekhnologii͡a︡ ", and Vsesoi͡u︡znyĭ nauchno-issledovatelʹskiĭ institut prirodnykh gazov. Komi filial., eds. Razrabotka i ėkspluatat͡s︡ii͡a︡ gazokondensatnykh mestorozhdeniĭ na zavershai͡u︡shcheĭ stadii: Tezisy dokladov konferent͡s︡ii (Komi filiala VNIIGAZa, okti͡a︡brʹ, 1990). Moskva: Vses. nauch.-issl. in-t prirodnykh gazov, 1990.

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22

M, Tagirov K., Gosudarstvennyĭ gazovyĭ kont͡s︡ern "Gazprom" (Russia), and Vsesoi͡u︡znyĭ nauchno-issledovatelʹskiĭ institut prirodnykh gazov., eds. Tekhnologii͡a︡ stroitelʹstva gazovykh i gazokondensatnykh skvazhin: Sbornik nauchnykh trudov. Moskva: Vses. nauchno-issl. in-t prirodnykh gazov, 1991.

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23

Truboprovodnyĭ transport produktov razrabotki gazokondensatnykh mestorozhdeniĭ. Moskva: "Nedra", 1990.

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24

A, Korshak A., ed. Truboprovodnyĭ transport nestabilʹnogo gazovogo kondensata. Moskva: VNIIOĖNG, 1994.

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25

I, Grit͡s︡enko A., ed. Metody povyshenii͡a︡ produktivnosti gazokondensatnykh skvazhin. Moskva: Nedra, 1997.

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26

Sovremennye problemy razrabotki gazokondensatnykh i neftegazokondensatnykh mestorozhdeniĭ: G. Salekhard, 14-17 fevrali︠a︡ 2007 g. : materialy nauchno-prakticheskoĭ sessii v ramkakh sovmestnogo zasedanii︠a︡ T︠S︡entralʹnoĭ komissii po razrabotke mestorozhdeniĭ poleznykh iskopaemykh (T︠S︡KP Rosnedra) i territorialʹnogo otdelenii︠a T︠S︡entralʹnoĭ komissii po razrabotke mestorozhdeniĭ poleznykh iskopaemykh po I︠A︡malo-Nenet︠s︡komu avtonomnomu okrugu (TO T︠S︡KP po I︠A︡NAO). Novosibirsk: Izd-vo Sibirskogo otd-nii︠a︡ Rossiĭskoĭ akademii nauk, 2007.

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27

Nazarov, A. V., k.t.n. and Spiridovich E. A, eds. Problemy razrabotki slozhnykh neftegazokondensatnykh mestorozhdeniĭ Timano-Pechorskoĭ provint͡s︡ii: Sbornik nauchnykh trudov. Ukhta: Severnyĭ nauchno-issl. i proektnyĭ in-t prirodnykh gazov, 1996.

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28

Kirchman, David L. The nitrogen cycle. Oxford University Press, 2018. http://dx.doi.org/10.1093/oso/9780198789406.003.0012.

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Nitrogen is required for the biosynthesis of many cellular components and can take on many oxidation states, ranging from −3 to +5. Consequently, nitrogen compounds can act as either electron donors (chemolithotrophy) or electron acceptors (anaerobic respiration). The nitrogen cycle starts with nitrogen fixation, the reduction of nitrogen gas to ammonium. Nitrogen fixation is carried out only by prokaryotes, mainly some cyanobacteria and heterotrophic bacteria. The ammonium resulting from nitrogen fixation is quickly used by many organisms for biosynthesis, being preferred over nitrate as a nitrogen source. It is also oxidized aerobically by chemolithoautotrophic bacteria and archaea during the first step of nitrification. The second step, nitrite oxidation, is carried out by other bacteria not involved in ammonia oxidation, resulting in the formation of nitrate. Some bacteria are capable of carrying out both steps (“comammox”). This nitrate can then be reduced to nitrogen gas or nitrous oxide during denitrification. It can be reduced to ammonium, a process called “dissimilatory nitrate reduction to ammonium.” Nitrogen gas is also released by anaerobic oxidation of ammonium (“anammox”) which is carried out by bacteria in the Planctomycetes phylum. The theoretical contribution of anammox to total nitrogen gas release is 29%, but the actual contribution varies greatly. Another gas in the nitrogen cycle, nitrous oxide, is a greenhouse gas produced by ammonia-oxidizing bacteria and archaea. The available data indicate that the global nitrogen cycle is in balance, with losses from nitrogen gas production equaling gains via nitrogen fixation. But excess nitrogen from fertilizers is contributing to local imbalances and several environmental problems in drinking waters, reservoirs, lakes, and coastal oceans.
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