Phenology and Seasonal Ecosystem Productivity in an Amazonian Floodplain Forest
Abstract
:1. Introduction
2. Materials and Methods
2.1. Study Site
2.2. Flux Tower and Field Data
where λ (J kg−1) = 103 ∗ (2500 − 2.37 ∗ Ta)
Gap Filling of CO2 Estimates
2.3. Litterfall Collection
2.4. Remote-Sensing Data and Products
If CWDm > 0 then CWDm = 0
2.5. Statistical Analysis
3. Results
3.1. Seasonal Meteorological, Gross Primary Productivity (GPP) and Enhanced Vegetation Index (EVI) Patterns
3.2. Correlation Between GPP, Climatic Variables and EVI
3.3. Seasonal Phenology Patterns and Analysis of Forest Canopy Gaps
3.4. Inter-Annual Variation of Seasonal Drivers and EVI-Multi-Angle Implementation Correction (MAIAC)
4. Discussion
5. Conclusions
Supplementary Materials
Author Contributions
Funding
Acknowledgments
Conflicts of Interest
References
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Parameter | Acquisitions | Start Year | End Year | Usage |
---|---|---|---|---|
LE | Tower | 2004 | 2014 | ET computation |
PAR | Tower | 2011 | 2013 | NEE computation |
Press | Tower | 2004 | 2014 | Relative humidity (RH) computation |
q | Tower | 2004 | 2016 | RH and VPD computation |
Rn | Tower | 2004 | 2014 | Correlation variable |
GPP | Tower | 2011 | 2013 | Productivity estimate/Correlation variable |
ET | Tower | 2004 | 2014 | Correlation variable |
VPD | Tower/Satellite | 2004 | 2016 | Correlation variable |
Ta | Tower/Satellite | 2004 | 2016 | VPD and ET computation/Correlation variable |
Rainfall/TRMM | Tower/Satellite | 2004 | 2014 | Correlation variable |
CWD | Tower/Satellite | 2004 | 2016 | Correlation variable |
EVI | Satellite | 2004 | 2016 | Phenology and productivity proxy/Correlation variable |
Soil moisture | Field | 2014 | 2016 | Correlation variable |
Litterfall | Field | 2004 | 2005 | Phenology proxy/Correlation variable |
Flood height | Tower | 2004 | 2016 | Define seasonal flooding |
Plots | Number of Individuals | Tree Mean Height (m) | 5% Percentile (m) | 95% Percentile (m) | Maximum (m) |
---|---|---|---|---|---|
BAN1 | 86 | 11.79 | 6.84 | 18.86 | 28.36 |
BAN2 | 84 | 12.48 | 4.5 | 19.77 | 38.89 |
LiDAR | - | 10.2 | 4.8 | 14.9 | 38 |
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Fonseca, L.D.M.; Dalagnol, R.; Malhi, Y.; Rifai, S.W.; Costa, G.B.; Silva, T.S.F.; Da Rocha, H.R.; Tavares, I.B.; Borma, L.S. Phenology and Seasonal Ecosystem Productivity in an Amazonian Floodplain Forest. Remote Sens. 2019, 11, 1530. https://doi.org/10.3390/rs11131530
Fonseca LDM, Dalagnol R, Malhi Y, Rifai SW, Costa GB, Silva TSF, Da Rocha HR, Tavares IB, Borma LS. Phenology and Seasonal Ecosystem Productivity in an Amazonian Floodplain Forest. Remote Sensing. 2019; 11(13):1530. https://doi.org/10.3390/rs11131530
Chicago/Turabian StyleFonseca, Letícia D. M., Ricardo Dalagnol, Yadvinder Malhi, Sami W. Rifai, Gabriel B. Costa, Thiago S. F. Silva, Humberto R. Da Rocha, Iane B. Tavares, and Laura S. Borma. 2019. "Phenology and Seasonal Ecosystem Productivity in an Amazonian Floodplain Forest" Remote Sensing 11, no. 13: 1530. https://doi.org/10.3390/rs11131530
APA StyleFonseca, L. D. M., Dalagnol, R., Malhi, Y., Rifai, S. W., Costa, G. B., Silva, T. S. F., Da Rocha, H. R., Tavares, I. B., & Borma, L. S. (2019). Phenology and Seasonal Ecosystem Productivity in an Amazonian Floodplain Forest. Remote Sensing, 11(13), 1530. https://doi.org/10.3390/rs11131530