Implementing a Nitrogen-Based Model for Autotrophic Respiration Using Satellite and Field Observations

The rate of carbon accumulation by terrestrial plant communities in a process-level, mechanistic modeling is the difference of the rate of gross photosynthesis by a canopy (A(sub g)) and autotrophic respiration (R) of the stand. Observations for different biomes often show that R to be a large and v...

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Main Authors: Choudhury, Bhaskar J., Houser, Paul
Language:unknown
Published: 2001
Subjects:
Online Access:http://hdl.handle.net/2060/20020010577
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spelling ftnasantrs:oai:casi.ntrs.nasa.gov:20020010577 2023-05-15T18:40:46+02:00 Implementing a Nitrogen-Based Model for Autotrophic Respiration Using Satellite and Field Observations Choudhury, Bhaskar J. Houser, Paul Unclassified, Unlimited, Publicly available [2001] application/pdf http://hdl.handle.net/2060/20020010577 unknown Document ID: 20020010577 http://hdl.handle.net/2060/20020010577 No Copyright CASI Life Sciences (General) 2001 ftnasantrs 2015-03-15T02:26:38Z The rate of carbon accumulation by terrestrial plant communities in a process-level, mechanistic modeling is the difference of the rate of gross photosynthesis by a canopy (A(sub g)) and autotrophic respiration (R) of the stand. Observations for different biomes often show that R to be a large and variable fraction of A(sub g), ca. 35% to 75%, although other studies suggest the ratio of R and A(sub g) to be less variable. Here, R has been calculated according to the two compartment model as being the sum of maintenance and growth components. The maintenance respiration of foliage and living fine roots for different biomes has been determined objectively from observed nitrogen content of these organs. The sapwood maintenance respiration is based on pipe theory, and checked against an independently derived equation considering sapwood biomass and its maintenance coefficient. The growth respiration has been calculated from the difference of A(sub g) and maintenance respiration. The A(sub g) is obtained as the product of biome-specific radiation use efficiency for gross photosynthesis under unstressed conditions and intercepted photosynthetically active radiation, and adjusted for stress. Calculations have been done using satellite and ground observations for 36 consecutive months (1987-1989) over large contiguous areas (ca. 10(exp 5) sq km) of boreal forests, crop land, temperate deciduous forest, temperate grassland, tropical deciduous forest, tropical evergreen forest, tropical savanna, and tundra. The ratio of annual respiration and gross photosynthesis, (R/A(sub g)), is found to be 0.5-0.6 for temperate and cold adopted biome areas, but somewhat higher for tropical biome areas (0.6-0.7). Interannual variation of the fluxes is found to be generally less than 15%. Calculated fluxes are compared with observations and several previous estimates. Results of sensitivity analysis are presented for uncertainties in parameterization and input data. It is found that uncertainty in determining maintenance respiration for tropical biomes is such that R/A(sub g) for these biomes could be similar to that for temperate biomes. Other/Unknown Material Tundra NASA Technical Reports Server (NTRS)
institution Open Polar
collection NASA Technical Reports Server (NTRS)
op_collection_id ftnasantrs
language unknown
topic Life Sciences (General)
spellingShingle Life Sciences (General)
Choudhury, Bhaskar J.
Houser, Paul
Implementing a Nitrogen-Based Model for Autotrophic Respiration Using Satellite and Field Observations
topic_facet Life Sciences (General)
description The rate of carbon accumulation by terrestrial plant communities in a process-level, mechanistic modeling is the difference of the rate of gross photosynthesis by a canopy (A(sub g)) and autotrophic respiration (R) of the stand. Observations for different biomes often show that R to be a large and variable fraction of A(sub g), ca. 35% to 75%, although other studies suggest the ratio of R and A(sub g) to be less variable. Here, R has been calculated according to the two compartment model as being the sum of maintenance and growth components. The maintenance respiration of foliage and living fine roots for different biomes has been determined objectively from observed nitrogen content of these organs. The sapwood maintenance respiration is based on pipe theory, and checked against an independently derived equation considering sapwood biomass and its maintenance coefficient. The growth respiration has been calculated from the difference of A(sub g) and maintenance respiration. The A(sub g) is obtained as the product of biome-specific radiation use efficiency for gross photosynthesis under unstressed conditions and intercepted photosynthetically active radiation, and adjusted for stress. Calculations have been done using satellite and ground observations for 36 consecutive months (1987-1989) over large contiguous areas (ca. 10(exp 5) sq km) of boreal forests, crop land, temperate deciduous forest, temperate grassland, tropical deciduous forest, tropical evergreen forest, tropical savanna, and tundra. The ratio of annual respiration and gross photosynthesis, (R/A(sub g)), is found to be 0.5-0.6 for temperate and cold adopted biome areas, but somewhat higher for tropical biome areas (0.6-0.7). Interannual variation of the fluxes is found to be generally less than 15%. Calculated fluxes are compared with observations and several previous estimates. Results of sensitivity analysis are presented for uncertainties in parameterization and input data. It is found that uncertainty in determining maintenance respiration for tropical biomes is such that R/A(sub g) for these biomes could be similar to that for temperate biomes.
author Choudhury, Bhaskar J.
Houser, Paul
author_facet Choudhury, Bhaskar J.
Houser, Paul
author_sort Choudhury, Bhaskar J.
title Implementing a Nitrogen-Based Model for Autotrophic Respiration Using Satellite and Field Observations
title_short Implementing a Nitrogen-Based Model for Autotrophic Respiration Using Satellite and Field Observations
title_full Implementing a Nitrogen-Based Model for Autotrophic Respiration Using Satellite and Field Observations
title_fullStr Implementing a Nitrogen-Based Model for Autotrophic Respiration Using Satellite and Field Observations
title_full_unstemmed Implementing a Nitrogen-Based Model for Autotrophic Respiration Using Satellite and Field Observations
title_sort implementing a nitrogen-based model for autotrophic respiration using satellite and field observations
publishDate 2001
url http://hdl.handle.net/2060/20020010577
op_coverage Unclassified, Unlimited, Publicly available
genre Tundra
genre_facet Tundra
op_source CASI
op_relation Document ID: 20020010577
http://hdl.handle.net/2060/20020010577
op_rights No Copyright
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