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Livros sobre o tema "Carbon dioxide (CO2)"

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1

Agency, International Energy. CO2 emissions from fuel combustion =: Émissions de CO2 dues a la combustion d'énérgie. 2a ed. Paris: OECD/IEA, 2004.

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2

Agency, International Energy. CO2 emissions from fuel combustion =: Émissions de CO2 dues a la combustion d'énérgie. 2a ed. Paris: OECD/IEA, 2003.

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3

Agency, International Energy. CO2 emissions from fuel combustion =: Emissions de CO2 dues a la combustion d'énergie. 2a ed. Paris: OECD, 2000.

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4

Viöl, Wolfgang. Gütegeschaltete Niederdruck-CO2-Laser. Berlin: Köster, 1994.

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5

CO2 enrichment in the greenhouse: Principles and practice. Portland, Or: Timber Press, 1988.

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6

Cenian, Adam. Physical processes in the CO2-lasers media. Gdańsk: Wydawn. Instytutu Maszyn Przepływowych Polskiej Akademii Nauk, 2006.

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7

Sugimoto, Hiroyuki. A method forestimating the sea-air CO2 flux in the Pacific Ocean. Tsukuba-shi: Meteorological Research Institute, 2012.

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8

Developments and innovation in carbon dioxide (CO2) capture and storage technology. Boca Raton, Fla: CRC Press, 2010.

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9

Offenhauser, Friedrich. Limits to the modulation of high power CO2 lasers. Koln: DFVLR, 1986.

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10

Pembina cardium CO2 monitoring pilot: A CO2-EOR project, Alberta, Canada : final report. Sherwood Park, Alta: Geoscience Publishing, 2009.

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11

Chung, Hyun-Sik. Why do CO2 emissions differ in China, Japan and Korea? Oxford: Oxford Institute for Energy Studies, 1998.

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12

Akakura, Yasuhiro. Waga kuni kamotsu no kokusai kokunai kaijō yusō ni yoru CO2 haishutsuryō no suikei. Yokosuka-shi: Kokudo Gijutsu Seisaku Sōgō Kenkyūjo, 2009.

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13

Organisation for Economic Co-operation and Development. Dept. of Economics and Statistics. The costs of reducing CO2 emissions: Evidence from GREEN. Paris: Organisation for Economic Co-operation and Development, 1992.

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14

Zhang, Hongwu. Chūgoku no tei tanso keizai e no tenkan ni kansuru kenkyū: Chiikibetsu CO2 haishutsu o chūshin ni. [Chiba-shi]: Nihon Bōeki Shinkō Kikō Ajia Keizei Kenkyūjo, 2011.

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15

Kaisha, Fujisaki Jimusho Kabushiki. CO2 sakugen mieruka purojekuto. [Tokyo]: Fujisaki Jimusho, 2009.

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16

Di qiu shi fang CO2 ji qi yao gan yan jiu jin zhan. Beijing Shi: Dian zi gong ye chu ban she, 2011.

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17

Statistics, Organisation for Economic Co-operation and Development Dept of Economics and. Costs of reducing CO2 emissions: Evidence from six global models. Paris: Organisation for Economic Co-operation and Development, 1992.

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18

Natural Sinks of CO2 (1992 Palmas Del Mar, Puerto Rico). Natural sinks of CO2: Palmas Del Mar, Puerto Rico, 24-27 February 1992. Dordrecht: Kluwer Academic, 1992.

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19

Carbon capture and storage: CO2 management technologies. Toronto: Apple Academic Press, 2014.

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20

Seikatsu Kyōdō Kumiai Paru Shisutemu Tōkyō. Tōkyō mai kōpu chiikigata CO2 sakugen eko akushon pointo jigyō. [Tokyo]: Seikatsu Kyōdō Kumiai Paru Shisutemu Tōkyō, 2009.

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21

Erickson, Jon D. The inefficiency and unfairness of tradable CO2 permits. Ithaca, N.Y: Dept. of Agricultural Economics, Cornell University Agricultural Experiment Station, New York State College of Agriculture and Life Sciences, Cornell University, 1992.

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22

International Symposium on CO2 in Protected Cultivation (4th 1989 Wageningen, Netherlands). Fourth International Symposium on CO2 in Protected Cultivation, Wageningen, the Netherlands, 19-23 June 1989. Editado por Challa H, Winden, C. M. M. van., Nederhoff E. M, International Society for Horticultural Science. Commission Protected Cultivation. e International Society for Horticultural Science. Working Group of CO₂ Nutrition. Wageningen, Netherlands: International Society for Horticultural Science, 1990.

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23

CO2, un mythe planétaire. Issy-les-Moulineaux: Editions du Toucan, 2009.

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24

Organisation for Economic Co-operation and Development. Dept. of Economics and Statistics. The Costs of reducing CO2 emissions: A comparison of carbon tax curves with GREEN. Paris: Organisation for Economic Co-operation and Development, 1992.

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25

Organisation for Economic Co-operation and Development. Economics Dept. Carbon taxes and CO2 emissions targets: Results from the IEA model. Paris: Organisation for Economic Co-Operation and Development, 1992.

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26

Agency, International Energy. Co2 Emissions from Fuel Combustion. OECD (Organisation for Economic Co-Operation & Dev, 1997.

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27

Advances in CO2 Capture, Sequestration, and Conversion. American Chemical Society, 2016.

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28

Centi, Gabriele, e Siglinda Perathoner. Green Carbon Dioxide: Advances in CO2 Utilization. Wiley & Sons, Incorporated, John, 2014.

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29

Centi, Gabriele, e Siglinda Perathoner. Green Carbon Dioxide: Advances in CO2 Utilization. Wiley & Sons, Incorporated, John, 2014.

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30

Co2 Emissions From Fuel Combustion 1971-2002. Organization for Economic, 2004.

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31

Centi, Gabriele, e Siglinda Perathoner. Green Carbon Dioxide: Advances in CO2 Utilization. Wiley & Sons, Limited, John, 2014.

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32

Centi, Gabriele, e Siglinda Perathoner. Green Carbon Dioxide: Advances in Co2 Utilization. Wiley & Sons, Incorporated, John, 2014.

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33

Green Carbon Dioxide: Advances in CO2 Utilization. Wiley, 2014.

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34

Centi, Gabriele, e Siglinda Perathoner. Green Carbon Dioxide: Advances in CO2 Utilization. Wiley & Sons, Incorporated, John, 2014.

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35

The Phanerozoic Carbon Cycle: CO2 and O2. Oxford University Press, USA, 2004.

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36

Griffiths, Graham W., e Anthony J. McHugh. Introductory Global Co2 Model. World Scientific Publishing Co Pte Ltd, 2015.

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37

Dumur, Didier, Sihem Tebbani, Rayen Filali, Filipa Lopes e Dominique Pareau. Co2 Biofixation by Microalgae: Automation Process. Wiley & Sons, Incorporated, John, 2014.

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38

Commission, European, ed. CO2 capture and storage projects. Luxembourg: Office for Official Publications of the European Communites, 2007.

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39

Li, Lan, Kevin Huang, Winnie Wong-Ng e Lawrence P. Cook. Materials and Processes for CO2 Capture, Conversion, and Sequestration. Wiley & Sons, Incorporated, John, 2018.

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40

Li, Lan, Kevin Huang, Winnie Wong-Ng e Lawrence P. Cook. Materials and Processes for CO2 Capture, Conversion, and Sequestration. Wiley & Sons, Incorporated, John, 2018.

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41

Materials and Processes for CO2 Capture, Conversion, and Sequestration. Wiley-American Ceramic Society, 2018.

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42

Li, Lan, Kevin Huang, Winnie Wong-Ng e Lawrence P. Cook. Materials and Processes for CO2 Capture, Conversion, and Sequestration. Wiley & Sons, Limited, John, 2018.

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43

Patel, Mikin V., e Steven Zangan. Optimizing Carbon Dioxide Peripheral Arteriography. Editado por S. Lowell Kahn, Bulent Arslan e Abdulrahman Masrani. Oxford University Press, 2018. http://dx.doi.org/10.1093/med/9780199986071.003.0103.

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Resumo:
Angiography relies on the use of contrast medium for visualization of the vessel. Iodinated contrast can be contraindicated in patients with renal impairment or iodinated contrast allergy, so carbon dioxide (CO2) gas can be a useful alternative. A number of technical and postural parameters can optimize CO2 angiography, and vasodilators can be used to improve imaging of peripheral vessels. Although CO2 has distinct advantages, the limitations of CO2 angiography must be well understood. Operators should be aware that CO2 angiography can lead to overestimation of vessel size and can lead to complications such as transient ischemia of tissues, alterations of blood chemistry, neurotoxicity, and “vapor lock.”
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44

Membrane Technology for CO2 Sequestration. Taylor & Francis Group, 2019.

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45

Jawad, Zeinab Abbas. Membrane Technology for CO2 Sequestration. Taylor & Francis Group, 2019.

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46

Jawad, Zeinab Abbas. Membrane Technology for CO2 Sequestration. Taylor & Francis Group, 2019.

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47

Jawad, Zeinab Abbas. Membrane Technology for CO2 Sequestration. Taylor & Francis Group, 2019.

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48

Jawad, Zeinab Abbas. Membrane Technology for CO2 Sequestration. Taylor & Francis Group, 2019.

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49

Membrane Technology for Co2 Sequestration. Taylor & Francis Group, 2021.

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50

Saadatpoor, Ehsan. Local Capillary Trapping in Geological Storage of Carbon Dioxide (CO2). Taylor & Francis Group, 2018.

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