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Titlebook: Blue Carbon in Shallow Coastal Ecosystems; Carbon Dynamics, Pol Tomohiro Kuwae,Masakazu Hori Book 2019 Springer Nature Singapore Pte Ltd. 2

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https://doi.org/10.1007/978-3-642-32841-1CO. dynamics of mangroves are often put under lenses to examine their potential to combat the human induced CO. emission. Mainly three types of CO. fluxes take place within a mangrove ecosystem namely (i) atmosphere-biosphere CO. exchange, (ii) soil CO. efflux and (iii) air-water CO. flux. In this c
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M. A. Sadovskii,V. F. Pisarenkoh photosynthesis. It is thought that on balance, carbon is stored in tidal flats and salt marshes. To explore this topic, we reviewed published estimates of air–water, air–sediment, water–sediment, and air–marsh fluxes of CO. in tidal flats and salt marshes. We also carried out multiyear measurement
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Forecasting Weather and Climate,n eelgrass beds and transported from shallow coastal waters to the deep sea. A part of the carbon taken up by eelgrass is decomposed and returned to biological production or the water column’s dissolved inorganic carbon pool, some is accumulated and stored in the shallow sea bottom, and the rest flo
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https://doi.org/10.1007/978-3-319-48698-7e previous chapters. The capability of net uptake of atmospheric CO. and soil organic carbon accumulation in global shallow coastal ecosystems are estimated to be about 1070 Tg C year. and about 140 Tg C year., respectively, with considerably large variabilities and uncertainties. Next, we discuss f
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https://doi.org/10.1007/978-981-13-1295-3Carbon sequestration; Shallow coastal ecosystems; Seagrass meadows; Coastal environmental; Costal ecolog
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978-981-13-4602-6Springer Nature Singapore Pte Ltd. 2019
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