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Global Temperature and Atmospheric Carbon Dioxide Concentration

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Global Carbon Dioxide Recycling

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Abstract

The solar energy absorbed by lands, oceans and the atmosphere is released in the form of infrared thermal radiation into space. Greenhouse gases absorb the infrared radiation and maintain stable climate. Among greenhouse gases carbon dioxide had been kept almost constant at about 280 ppm by a balance in biogeochemical carbon cycle before industrial revolution. After industrial revolution it became higher than 290 ppm for about 100 years. During subsequent 100 years from the 1870s the industrial development of the world led to its constant increase at about 0.28 ppm every year. After 1970, the carbon dioxide emissions were too much to be treated on our planet. Carbon dioxide was accumulating in the atmosphere with an increase in rate and its atmospheric concentration exceeded 400 ppm. It has been said in 2007 that the atmospheric carbon dioxide concentration reached the level in 3.5 million years ago, in spite of the fact that our Homo Sapiens appeared only 200 thousand years ago. It has been known that in 3.5 million years ago the atmospheric carbon dioxide concentration was between 360 to 400 ppm and that the mean global temperature and sea level were 2–3 °C and 15–25 m higher than the pre-industrial levels, respectively. Our planet spent 2.5 million years to decrease it to the preindustrial level by forming carbonate solids due to chemical weathering of the Himalayas. It is clear how the current level is hazardous, and we need to avoid the carbon dioxide emissions higher than the pre-industrial level.

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References

  1. Nakazawa T, Machida T, Tanaka M, Fujii Y, Aoki S, Watanabe O (1993) Atmospheric CO2 concentrations and carbon isotopic ratios for the last 250 years deduced from an Antarctic ice core, H 15. In: Proceedings of fourth international conference on analysis and evaluation of atmospheric CO2 data, present and past, pp 193–196. http://caos.sakura.ne.jp/tgr/observation/co2

  2. Morimoto S, Nakazawa T, Aoki S, Hashida G, Yamanouchi T (2003) Concentration variations of atmospheric CO2 observed at Syowa Station, Antarctica from 1984 to 2000, Tellus, 55B, pp 170–177

    Google Scholar 

  3. Japan Meteorological Agency, http://ds.data.jma.go.jp/ghg/kanshi/obs/co2_monthave_ryo.html

  4. IPCC Fourth Assessment Report: Climate Change 2007: Working Group I: The Physical Science Basis

    Google Scholar 

  5. Haywood AM, Dowsett HJ, Valdes PJ, Lunt DJ, Francis JE, Sellwood BW (2009) Introduction. Pliocene climate, processes and problems. Phil Trans R Soc A, 13 January 2009. https://doi.org/10.1098/rsta.2008.0205

    Article  Google Scholar 

  6. Lisiecki LE, Raymo ME (2005) A pliocene-pleistocene stack of 57 globally distributed benthic δ18O records. Paleoceanography 20:PA1003. https://doi.org/10.1029/2004pa001071

    Article  Google Scholar 

  7. Matt Brinkman, Ice Core Dating. Last Update: January 3, 1995, http://www.talkorigins.org/faqs/icecores.html

  8. Peel DA, Mulvaney R, Davison BM (1988) Stable-isotope/air-temperature relationships in ice cores from Dolleman Island and the Palmer Land plateau, Antarctic Peninsula. Ann Glaciol 10:130–136

    Article  Google Scholar 

  9. Hiyama T, Abe O, Kurita N, Fujita K, Ikeda K, Hashimoto S, Tsujimura M, Yamanaka T (2008) Review and perspective on the water cycle processes using stable isotope of water. J Japan Soc Hydrol Water Res 21(2):158–176

    Article  Google Scholar 

  10. Petit JR, Raynaud D, Lorius C, Jouzel J, Delaygue G, Barkov NI, Kotlyakov VM (2000) Historical isotopic temperature record from the Vostok Ice Core. http://cdiac.ess-dive.lbl.gov/trends/temp/vostok/jouz_tem.htm. Revised January 2000

  11. Jouzel J, Lorius C, Petit JR, Genthon C, Barkov NI, Kotlyakov VM, Petrov VM (1987) Vostok ice core: a continuous isotope temperature record over the last climatic cycle (160,000 years). Nature 329:403–408

    Article  Google Scholar 

  12. Barnola J-M, Raynaud D, Lorius C, Barkov NI (2003) Historical carbon dioxide record from the Vostok Ice Core. http://cdiac.ess-dive.lbl.gov/trends/co2/vostok.html. Revised February 2003

  13. Barnola J-M, Raynaud D, Korotkevich YS, Lorius C (1987) Vostok ice core provides 160,000-year record of atmospheric CO2. Nature 329:408–414

    Article  Google Scholar 

  14. Petit JR, Basile I, Leruyuet A, Raynaud D, Lorius C, Jouzel J, Stievenard M, Lipenkov VY, Barkov NI, Kudryashov BB, Davis M, Saltzman E, Kotlyakov V (1997) Four climate cycles in the Vostok ice core. Nature 387:359–360

    Article  Google Scholar 

  15. Petit JR, Jouzel J, Raynaud D, Barkov NI, Barnola J-M, Basile I, Bender M, Chappellaz J, Davis M, Delaygue G, Delmotte M, Kotlyakov VM, Legrand M, Lipenkov VY, Lorius C, Pepin L, Ritz C, Saltzman E, Stievenard M (1999) Climate and atmospheric history of the past 420,000 years from the Vostok ice core, Antarctica. Nature 399:429–436 (3 June 1999). https://doi.org/10.1038/20859

    Article  Google Scholar 

  16. Milankovitch M (1941) Kanon der Erdbestrahlungen und seine Anwendung auf das Eiszeitenproblem. Spec Publ R Serb Acad Belgrade 132:1–633

    Google Scholar 

  17. NHK Special: Emergence of Human, the 2nd Collection; Encounter with Nearest Rival and Separation, 9:00 pm. May 13, 2018

    Google Scholar 

  18. Yasunari T (2013) Himalayan rise and human evolution, himalayan study, monographs—Kyoto University No. 14 (2013) 19–38. http://mausam.hyarc.nagoya-u.ac.jp/~yasunari/list/pdf/yasunari.himarayagakushi.2013.pdf

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Correspondence to Koji Hashimoto .

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Hashimoto, K. (2019). Global Temperature and Atmospheric Carbon Dioxide Concentration. In: Global Carbon Dioxide Recycling. SpringerBriefs in Energy. Springer, Singapore. https://doi.org/10.1007/978-981-13-8584-1_3

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  • DOI: https://doi.org/10.1007/978-981-13-8584-1_3

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  • Publisher Name: Springer, Singapore

  • Print ISBN: 978-981-13-8583-4

  • Online ISBN: 978-981-13-8584-1

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