Michael Raupach
Biographic Data
| ID | 6568089 |
|---|---|
| NAME | Michael Raupach |
| GIVEN NAMES | Michael |
| FAMILY NAME | Raupach |
| SIGNATURE | RAUPACH M |
| AFFILIATIONS | CSIRO Oceans and Atmosphere |
| ORCID | 0000-0003-0688-3839 |
| VERIFIED | Yes |
| TOTAL WORKS | 11 |
| TOTAL CITATIONS | 13 |
| AUTHOR COUNT | 11 |
| EDITOR COUNT | 0 |
| FIRST PUBLICATION YEAR | 2007 |
| LATEST PUBLICATION YEAR | 2018 |
| H-INDEX | 2 |
Single-sided NMR as a non-destructive method for quality evaluation of hydrophobic treatments on natural stones
The dominant role of semi-arid ecosystems in the trend and variability of the land CO 2 sink
The difference is found at the margins The terrestrial biosphere absorbs about a quarter of all anthropogenic carbon dioxide emissions, but the amount that they take up varies from year to year. Why? Combining models and observations, Ahlström et al. found that marginal ecosystems—semiarid savannas and low-latitude shrublands—are responsible for most of the variability. Biological productivity in these semiarid regions is water-limited and strong…
The declining uptake rate of atmospheric CO 2 by land and ocean sinks
Through 1959–2012, an airborne fraction (AF) of 44% of total anthropogenic CO2 emissions remained in the atmosphere, with the rest being taken up by land and ocean CO2 sinks. Understanding of this uptake is critical because it greatly alleviates the emissions reductions required for climate mitigation. An observable quantity that reflects sink properties more directly than the AF is the CO2 sink rate (kS), the combined land-ocean CO2 sink flux pe…
An International Carbon Office to assist policy-based science
Interactions of the carbon cycle, human activity, and the climate system: A research portfolio
Carbon and the Anthropocene
Trends in the sources and sinks of carbon dioxide
Managing Forests for Climate Change Mitigation
Forests currently absorb billions of tons of CO 2 globally every year, an economic subsidy worth hundreds of billions of dollars if an equivalent sink had to be created in other ways. Concerns about the permanency of forest carbon stocks, difficulties in quantifying stock changes, and the threat of environmental and socioeconomic impacts of large-scale reforestation programs have limited the uptake of forestry activities in climate policies. With…
Global and regional drivers of accelerating CO 2 emissions
CO 2 emissions from fossil-fuel burning and industrial processes have been accelerating at a global scale, with their growth rate increasing from 1.1% y −1 for 1990–1999 to >3% y −1 for 2000–2004. The emissions growth rate since 2000 was greater than for the most fossil-fuel intensive of the Intergovernmental Panel on Climate Change emissions scenarios developed in the late 1990s. Global emissions growth since 2000 was driven by a cessation or re…
Contributions to accelerating atmospheric CO 2 growth from economic activity, carbon intensity, and efficiency of natural sinks
The growth rate of atmospheric carbon dioxide (CO 2 ), the largest human contributor to human-induced climate change, is increasing rapidly. Three processes contribute to this rapid increase. Two of these processes concern emissions. Recent growth of the world economy combined with an increase in its carbon intensity have led to rapid growth in fossil fuel CO 2 emissions since 2000: comparing the 1990s with 2000–2006, the emissions growth rate in…
Holistic, adaptive management of the terrestrial carbon cycle at local and regional scales
Carbon and the Anthropocene
Holistic, adaptive management of the terrestrial carbon cycle at local and regional scales
Single-sided NMR as a non-destructive method for quality evaluation of hydrophobic treatments on natural stones
An International Carbon Office to assist policy-based science
Interactions of the carbon cycle, human activity, and the climate system: A research portfolio
Global and regional drivers of accelerating CO 2 emissions
CO 2 emissions from fossil-fuel burning and industrial processes have been accelerating at a global scale, with their growth rate increasing from 1.1% y −1 for 1990–1999 to >3% y −1 for 2000–2004. The emissions growth rate since 2000 was greater than for the most fossil-fuel intensive of the Intergovernmental Panel on Climate Change emissions scenarios developed in the late 1990s. Global emissions growth since 2000 was driven by a cessation or re…
Contributions to accelerating atmospheric CO 2 growth from economic activity, carbon intensity, and efficiency of natural sinks
The growth rate of atmospheric carbon dioxide (CO 2 ), the largest human contributor to human-induced climate change, is increasing rapidly. Three processes contribute to this rapid increase. Two of these processes concern emissions. Recent growth of the world economy combined with an increase in its carbon intensity have led to rapid growth in fossil fuel CO 2 emissions since 2000: comparing the 1990s with 2000–2006, the emissions growth rate in…
Holistic, adaptive management of the terrestrial carbon cycle at local and regional scales
Managing Forests for Climate Change Mitigation
Forests currently absorb billions of tons of CO 2 globally every year, an economic subsidy worth hundreds of billions of dollars if an equivalent sink had to be created in other ways. Concerns about the permanency of forest carbon stocks, difficulties in quantifying stock changes, and the threat of environmental and socioeconomic impacts of large-scale reforestation programs have limited the uptake of forestry activities in climate policies. With…
Trends in the sources and sinks of carbon dioxide
An International Carbon Office to assist policy-based science
Interactions of the carbon cycle, human activity, and the climate system: A research portfolio
Carbon and the Anthropocene
The declining uptake rate of atmospheric CO 2 by land and ocean sinks
Through 1959–2012, an airborne fraction (AF) of 44% of total anthropogenic CO2 emissions remained in the atmosphere, with the rest being taken up by land and ocean CO2 sinks. Understanding of this uptake is critical because it greatly alleviates the emissions reductions required for climate mitigation. An observable quantity that reflects sink properties more directly than the AF is the CO2 sink rate (kS), the combined land-ocean CO2 sink flux pe…
The dominant role of semi-arid ecosystems in the trend and variability of the land CO 2 sink
The difference is found at the margins The terrestrial biosphere absorbs about a quarter of all anthropogenic carbon dioxide emissions, but the amount that they take up varies from year to year. Why? Combining models and observations, Ahlström et al. found that marginal ecosystems—semiarid savannas and low-latitude shrublands—are responsible for most of the variability. Biological productivity in these semiarid regions is water-limited and strong…
Single-sided NMR as a non-destructive method for quality evaluation of hydrophobic treatments on natural stones
Environmental Science (11 works) · Climate change (7 works) · Atmospheric and Environmental Gas Dynamics (6 works) · Climate Change Policy and Economics (6 works) · Ecosystem (6 works) · Atmospheric sciences (5 works) · Biology (5 works) · Business (5 works) · Carbon cycle (5 works) · Carbon sink (5 works)