Showing posts sorted by relevance for query productivity. Sort by date Show all posts
Showing posts sorted by relevance for query productivity. Sort by date Show all posts

Tuesday, June 3, 2014

New paper finds greening of Earth in high northern latitudes has significantly increased

A new paper published in Global Change Biology finds "statistically significant increases in vegetation productivity (greening) in over 15%" of high northern latitudes over recent decades, "whereas the reverse was rare (<3 font="">

The paper adds to many other papers documenting the greening of planet Earth thanks to CO2 fertilization and warming

Vegetation productivity patterns at high northern latitudes: a multi-sensor satellite data assessment

Kevin C. Guay et al

Satellite-derived indices of photosynthetic activity are the primary data source used to study changes in global vegetation productivity over recent decades. Creating coherent, long-term records of vegetation activity from legacy satellite data sets requires addressing many factors that introduce uncertainties into vegetation index time series. We compared long-term changes in vegetation productivity at high northern latitudes (>50°N), estimated as trends in growing season NDVI derived from the most widely used global NDVI data sets. The comparison included the AVHRR based GIMMS-NDVI version G (GIMMSg) series, and its recent successor version 3g (GIMMS3g), as well as the shorter NDVI records generated from the more modern sensors, SeaWiFS, SPOT-VGT and MODIS. The data sets from the latter two sensors were provided in a form that reduces the effects of surface reflectance associated with solar and view angles. Our analysis revealed large geographic areas, totaling 40% of the study area, where all data sets indicated similar changes in vegetation productivity over their common temporal record, as well as areas where data sets showed conflicting patterns. The newer, GIMMS3g dataset showed statistically significant (α = 0.05) increases in vegetation productivity (greening) in over 15% of the study area, not seen in its predecessor (GIMMSg), whereas the reverse was rare (<3 b="">The latter has implications for earlier reports on changes in vegetation activity based on GIMMSg, particularly in Eurasia where greening is especially pronounced in the GIMMS3g data. Our findings highlight both critical uncertainties and areas of confidence in the assessment of ecosystem-response to climate change using satellite-derived indices of photosynthetic activity. Broader efforts are required to evaluate NDVI time series against field measurements of vegetation growth, primary productivity, recruitment, mortality and other biological processes in order to better understand ecosystem responses to environmental change over large areas.

Tuesday, June 18, 2013

New paper finds increased CO2 improves both the productivity and nutritional quality of spinach

A new paper published in Advances in Space Research finds increased levels of CO2 promote spinach productivity and accumulation of vitamin C in spinach leaves. According to the authors, "High light and high CO2 independently one from the other, promoted spinach productivity, and the accumulation of ascorbic acid [vitamin C], while their interactive effect limited the accumulation of nitrate and oxalic acid in the spinach leaves." Decreased oxalic acid is beneficial for human nutrition because oxalic acid blocks absorption of essential minerals

Influence of the interaction between light intensity and CO2 concentration on productivity and quality of spinach (Spinacia oleracea L.) grown in fully controlled environment


Author(s): Simona Proietti , Stefano Moscatello , Gene A. Giacomelli , Alberto Battistelli

Abstract: The effects of the factorial combination of two light intensities (200 and 800 μmol m-2 s-1) and two CO2 concentrations (360 and 800 ppm) were studied on the productivity and nutritional quality of spinach (Spinacia oleracea L.) grown under controlled environment. After 6 weeks within a growth chamber, spinach plants were sampled and analyzed for productivity and quality. There were no statistically significant interactions between the effects of light and CO2 for all of the variables studied, except for the nitrate and oxalic acid content of the leaves. High light and high CO2 independently one from the other, promoted spinach productivity, and the accumulation of ascorbic acid [vitamin C], while their interactive effect limited the accumulation of nitrate and oxalic acid in the spinach leaves. The results highlight the importance of considering the effects of the interaction among environmental variables on maximizing production and the nutritional quality of the food when cultivating and modeling the plant response in controlled environment systems such as for bioregenerative life support.

Related posts on CO2 greening the planet

Friday, May 30, 2014

Review finds warming is beneficial to ocean productivity

A new SPPI and CO2 Science review of the scientific literature on the response of ocean productivity to warming concludes, "In light of the many real-world observations cited above, not only does there appear to be no indications of any widespread decline in oceanic productivity over the twentieth century in response to increases in air temperature, evidence indicates that just the opposite is occurring, thanks to the very same environmental change, which is actually proving to be beneficial."

marine_plant_response
[Illustrations, footnotes and references available in PDF version]
Excerpts:
According to the IPCC, CO2-induced global warming will be net harmful to the world's marine species. One consequence of such harm, is a projected decline in ocean productivity. And in light of what the IPCC frequently refers to as the unprecedented modern rise in global temperature, it might reasonably be expected there should already be signs of a major negative impact on oceanic productivity. Yet the studies highlighted in this summary yield little evidence in support of the IPCC point of view.
It would appear that by enhancing the upwelling of cooler nutrient-rich waters along the eastern margins of major ocean basins, global warming helps to significantly enhance global-ocean primary productivity, which leads in turn to an increase in global-ocean secondary productivity, as represented by the global fish catch. 

Thursday, March 13, 2014

Review finds CO2 fertilization has increased forest productivity and resistance to drought

A new paper from SPPI and CO2 Science reviews the scientific literature on biospheric productivity in South America and finds robust evidence that the increase in CO2 fertilization has resulted in ever-increasing forest production. In addition, plants exposed to increased CO2 have been found to lose less water to transpiration, and thus are better able to withstand drought.

biospheric_productivity
[Illustrations, footnotes and references available in PDF version]
Excerpts:
How will the terrestrial vegetation of South America respond to global warming and atmospheric CO2 enrichment? Climate alarmists suggest there will be widespread declines in both ecosystem size and productivity. But are these predictions correct? Given the fact that over the past century the Earth has experienced what alarmists refer to as unprecedented rises in both atmospheric temperature and CO2 concentration relative to the past two thousand years and several million years, respectively, plants should already be responding to the changes in these two environmental parameters. And what has that response been? In this summary we consider this question as it applies to locations in South America.
CO2 fertilization effects strongly increased recent Net Primary Production trends in regional totals.
Such a finding is especially interesting, because for most of the past century it was believed that old-growth forests, such as those of Amazonia, should be close to dynamic equilibrium. Just the opposite, however, has been repeatedly observed by several different groups of researchers over the past two decades.

Plants exposed to elevated CO2 concentrations are likely to lose less water via transpiration.


As a result, at higher CO2 concentrations, plants can better cope under conditions of drought, thereby vastly improving their productivity and growth as opposed to conditions experienced under lower CO2.

In light of the voluminous and undeniable real-world observations reported in the studies described above, it must be acknowledged that where tropical forests have not been decimated by the direct destructive actions of man, such as the felling and burning of trees, forest productivity has been growing ever greater with the passing of time, rising hand-in-hand with the increasing CO2 content of the air; and it has been doing so in spite of all concomitant changes in atmospheric, soil, and water chemistry, as well as "dreaded" 20th-century global warming, which is claimed by climate alarmists to have been unprecedented over the past two millennia. Real-world evidence also suggests that the anthropogenic-induced increase in the air's CO2 content is primarily responsible for this beneficent state of affairs, which further suggests that if humanity will but cease its direct physical assaults upon Earth's tropical forests, there is nothing to fear about their future well-being but ill-founded fear itself.

Tuesday, February 26, 2013

Study finds increased CO2 will greatly enhance productivity of world's major crops

A review paper published in Climate Research finds an increase of CO2 fertilization of 300 ppm would enhance productivity of the world's major crops by 34%- 40%. The paper adds to many other peer-reviewed publications finding, contrary to claims of climate alarmists, that increased CO2 will be a boon to agricultural productivity, as well as confer resistance of rainforests to climate change. 

From the latest NIPCC Report

Field scale influence of CO2 on the world's major crops

Reference:

Vanuytrecht, E., Raes, D., Willems, P. and Geerts, S. 2012. Quantifying field-scale effects of elevated carbon dioxide concentration on crops. Climate Research 54: 35-47.

Working with peer-reviewed publications that report the results of Free-Air CO2-Enrichment (FACE) studies - which they acquired via searches of the ISI Web of Science citation database (Thomson) and the ScienceDirect citation database (Elsevier BV) - Vanuytrecht et al. (2012) conducted a meta-analysis of 529 independent observations of various plant growth responses to elevated CO2 that they obtained from 53 papers that contained relevant data in graphical or numerical format pertaining to the following major crops: wheat (Triticum aestivum L.), barley (Hordeum vulgare L.), rice (Oryza sativa L.), soybean (Glycine max L.), potato (Solanum tuberosum L.), sugar beet (Beta vulgaris L.), cotton (Gossypium hirsutum L.), maize (Zea mays L.) and sorghum (Sorghum bicolor L.), as well as the two major pasture species of perennial ryegrass (Lolium perenne L.) and white clover (Trifolium repens L.).

Considered en masse, Vanuytrecht et al. determined that for an approximate 200-ppm increase in the air's CO2 concentration (the mean enhancement employed in the studies they analyzed), water productivity was improved by 23% in the case of above ground biomass production per unit of water lost to evapotranspiration, and by 27% in the case of above ground yield produced per unit of water lost to evapotranspiration, which two productivity increases would roughly correspond to enhancements of 34% and 40% for a 300-ppm increase in the atmosphere's CO2 concentration.

It is also important to note in this regard that although "the FACE technique avoids the potential limitations of (semi-) closed systems by studying the influence of elevated CO2 on crop growth in the field without chamber enclosure," as the team of Belgian researchers write, other studies have demonstrated a significant problem caused by the rapid (sub-minute) fluctuations of CO2 concentration about a target mean that are common to most FACE experiments, as described by Bunce (2011, 2012), who found most recently that total shoot biomass of vegetative cotton plants in a typical FACE study averaged 30% less than in a constantly-elevated CO2 treatment at 27 days after planting, while wheat grain yields were 12% less in a fluctuating CO2 treatment compared with a constant elevated CO2 concentration treatment.

Looking toward the future, getting higher crop yields per unit of water used in the process of obtaining them will be a key element of mankind's struggle to feed our ever-increasing numbers over the next four decades, when our food needs are expected to double (Parry and Hawkesford, 2010); and with both land and water shortages looming on the horizon, we are going to need all of the help we can possibly get to grow the extra needed food. Fortunately, the results of this meta-analysis coming out of Belgium point to one important avenue by which such very substantial help can come, but it will only come if the air's CO2 content is allowed to rise unimpeded.

Additional References:

Bunce, J.A. 2011. Performance characteristics of an area distributed free air carbon dioxide enrichment (FACE) system. Agricultural and Forest Meteorology 151: 1152-1157.

Bunce, J.A. 2012. Responses of cotton and wheat photosynthesis and growth to cyclic variation in carbon dioxide concentration. Photosynthetica 50: 395-400.

Parry, M.A.J. and Hawkesford, M.J. 2010. Food security: increasing yield and improving resource use efficiency. Proceedings of the Nutrition Society 69: 592-600.

Wednesday, January 23, 2013

New paper predicts CO2 fertilization will greatly improve plant productivity by 40-60%

A paper published today in Biogeosciences finds that the increase in CO2 levels since 1850 has greatly enhanced plant fertilization and that a doubling of CO2 levels would be predicted to increase plant productivity by 40 - 60%. The study derives "a probabilistic prediction for the globally averaged strength of CO2 fertilization in nature, for the period 1850 to 2000 AD, implicitly net of other limiting factors such as nutrient availability" and predicts, "the increase in gross primary productivity (GPP) in response to a doubling of CO2 from pre-industrial values is very likely (90% confidence) to exceed 20%, with a most likely value of 40–60%."

Related: Greenhouse operators increase CO2 levels by 3-4 times to enhance plant productivity by up to 50%

Biogeosciences, 10, 339-355, 2013
www.biogeosciences.net/10/339/2013/
doi:10.5194/bg-10-339-2013


A model-based constraint on CO2 fertilisation

P. B. Holden1, N. R. Edwards1, D. Gerten2, and S. Schaphoff2
1Environment, Earth and Ecosystems, Open University, Milton Keynes, UK
2Potsdam Institute for Climate Impact Research, Potsdam, Germany

 Abstract. We derive a constraint on the strength of CO2 fertilisation of the terrestrial biosphere through a "top-down" approach, calibrating Earth system model parameters constrained by the post-industrial increase of atmospheric CO2 concentration. We derive a probabilistic prediction for the globally averaged strength of CO2 fertilisation in nature, for the period 1850 to 2000 AD, implicitly net of other limiting factors such as nutrient availability. The approach yields an estimate that is independent of CO2 enrichment experiments. To achieve this, an essential requirement was the incorporation of a land use change (LUC) scheme into the GENIE Earth system model. Using output from a 671-member ensemble of transient GENIE simulations, we build an emulator of the change in atmospheric CO2 concentration change since the preindustrial period. We use this emulator to sample the 28-dimensional input parameter space. A Bayesian calibration of the emulator output suggests that the increase in gross primary productivity (GPP) in response to a doubling of CO2 from preindustrial values is very likely (90% confidence) to exceed 20%, with a most likely value of 40–60%. It is important to note that we do not represent all of the possible contributing mechanisms to the terrestrial sink. The missing processes are subsumed into our calibration of CO2 fertilisation, which therefore represents the combined effect of CO2 fertilisation and additional missing processes. If the missing processes are a net sink then our estimate represents an upper bound. We derive calibrated estimates of carbon fluxes that are consistent with existing estimates. The present-day land–atmosphere flux (1990–2000) is estimated at −0.7 GTC yr−1 (likely, 66% confidence, in the range 0.4 to −1.7 GTC yr−1). The present-day ocean–atmosphere flux (1990–2000) is estimated to be −2.3 GTC yr−1 (likely in the range −1.8 to −2.7 GTC yr−1). We estimate cumulative net land emissions over the post-industrial period (land use change emissions net of the CO2 fertilisation and climate sinks) to be 66 GTC, likely to lie in the range 0 to 128 GTC.

 Final Revised Paper (PDF, 2501 KB)   Discussion Paper (BGD)   

Tuesday, May 28, 2013

New paper finds CO2 has increased 30 year soybean yields ~10%

A paper published today in Global Change Biology finds that, due to fertilization from elevated CO2 concentrations, "Thirty-year average soybean yield increased everywhere (~10%)" in the US Midwest. The paper adds to hundreds of other peer-reviewed publications demonstrating that elevated concentrations of CO2 are a boon to agricultural productivity

Impacts of elevated CO2 concentration on the productivity and surface energy budget of the soybean and maize agroecosystem in the Midwest U.S

Tracy E. Twine et al 

Abstract: The physiological response of vegetation to increasing atmospheric carbon dioxide concentration ([CO2]) modifies productivity and surface energy and water fluxes. Quantifying this response is required for assessments of future climate change. Many global climate models account for this response; however, significant uncertainty remains in model simulations of this vegetation response and its impacts. Data from in situfield experiments provide evidence that previous modeling studies may have overestimated the increase in productivity at elevated [CO2], and the impact on large-scale water cycling is largely unknown. We parameterized the Agro-IBIS dynamic global vegetation model with observations from the SoyFACE experiment to simulate the response of soybean and maize to an increase in [CO2] from 375 ppm to 550 ppm. The two key model parameters that were found to vary with [CO2] were the maximum carboxylation rate of photosynthesis and specific leaf area. Tests of the model that used SoyFACE parameter values showed a good fit to site-level data for all variables except latent heat flux over soybean and sensible heat flux over both crops. Simulations driven with historic climate data over the central U.S. showed that increased [CO2] resulted in decreased latent heat flux [evaporation] and increased sensible heat flux [conduction] from both crops when averaged over 30 years. Thirty-year average soybean yield increased everywhere (~10%); however, there was no increase in maize yield except during dry years. Without accounting for CO2 effects on the maximum carboxylation rate of photosynthesis and specific leaf area, soybean simulations at 550 ppm overestimated leaf area and yield. Our results highlight important model parameter values that, if not modified in other models, could result in biases when projecting future crop-climate-water relationships.

Thursday, December 5, 2013

New paper finds warming & CO2 increase wheat production in central Asia

Climate Change Impacts on Wheat Production in Central Asia 

A team of 20 researchers reports that “the overall simulated impact of climate change on wheat productivity in Central Asia is positive,” noting that “a warmer climate explains most of this positive impact” and that “CO2 fertilization adds to it.”

Reference
Sommer, R., Glazirina, M., Yuldashev, T., Otarov, A., Ibraeva, M., Martynova, L., Bekenov, M., Kholov, B., Ibragimov, N., Kobilov, R., Karaev, S., Sultonov, M., Khasanova, F., Esanbekov, M., Mavlyanov, D., Isaev, S., Abdurahimov, S., Ikramov, R., Shezdyukova, L. and de Pauw, E. 2013. Impact of climate change on wheat productivity in Central Asia. Agriculture, Ecosystems and Environment 178: 78-99.

According to Sommer et al. (2013), "global warming and related climate change (CC) may pose a major challenge to agriculture and rural livelihoods in Central Asia, with its five countries Kazakhstan, Uzbekistan, Kyrgyzstan, Tajikistan and Turkmenistan." And "in view of the little hard data at hand," as they continue, they say "there is considerable uncertainty about the impact of CC," concluding, therefore, that "the sub-region is clearly in need of more climate change-related research."

To address this issue, Sommer et al. assessed the crop growth and yield of 14 wheat varieties grown on 18 sites in key agro-ecological zones of Kazakhstan, Kyrgyzstan, Uzbekistan and Tajikistan in response to two projections of climate change - the IPCC (2007) SRES scenarios A1B and A2 - comparing the results against historic (1961-1990) figures, where the impact on wheat was simulated with the CropSyst model (Stockle et al., 2003) that distinguishes three levels of agronomic management.

The 20 researchers report that "the overall simulated impact of climate change on wheat productivity in Central Asia is positive," noting that "a warmer climate explains most of this positive impact" and that "CO2 fertilization adds to it." They do acknowledge, however, that "too hot temperatures during flowering will become a problem in the long-term future in some, mostly southern, areas and in the spring wheat areas of northern Kazakhstan." But they say that "the picture is not unduly dramatic, and targeted crop breeding towards temperature tolerance in combination with improved agronomic management (shifting planting dates) may be able to tackle the issue." And in light of the projected "improved transpiration use efficiency in response to elevated atmospheric CO2 concentrations," they report that "irrigation water requirements of wheat did not increase."

In concluding their paper, Sommer et al. write that "development of adaptation options to CC was part of the original objectives of the study." When all was said and done, however, they decided that "given the generally positive impact of CC on wheat productivity in Central Asia, there remains little to be argued about adaptation needs for farmers," other than to mention that adaptive changes in sowing dates, cultivar traits and inputs "might lead to even further yield increases," which sounds like a pretty good future, indeed.

Additional References
IPCC. 2007. IPCC Fourth Assessment Report: Climate Change 2007 (AR4).

Stockle, C.O., Donatelli, M. and Nelson, R. 2003. CropSyst, a cropping systems simulation model. European Journal of Agronomy 18: 289-307.

Thursday, September 19, 2013

Review paper finds biosphere productivity of the Arctic is thriving due to CO2 fertilization and warming

A new review paper by SPPI and CO2 Science finds "Land-based plants of the Arctic and near-Arctic regions of North America are not headed down the road of environmental degradation and toward extinction, but are thriving, thanks in large part to the ongoing rise in the atmosphere's CO2 concentration and global warming."

high_lat.png
[Illustrations, footnotes and references available in PDF version]
Excerpts:
How does the terrestrial vegetation of Earth's natural ecosystems respond to increases in atmospheric temperature and CO2 concentration? We here consider this question as it applies to Arctic and near-Arctic locations in North America.
Their observations simply indicated "a previously undemonstrated capacity for ecosystems to metabolically adjust to long-term (decadal or longer) changes in climate."
It is clear that the productivity of vegetation in the northern reaches of the Northern Hemisphere has been increasing with time.
These several observations would seem to suggest that the entire Circumpolar Arctic is in the process of returning to what could be called the good old days, when that part of the planet was a whole lot greener - and a whole lot livelier - than it has been for a long, long time.
It would appear that many of Earth's higher-latitude terrestrial ecosystems might well be able to sustain considerably greater primary productivity, as well as much larger numbers of higher trophic-level consumers, in a CO2-enriched and warmer world.
These data confirm the findings of prior satellite assessments of the vegetative transformation of Earth's northernmost collection of landscapes over the past three decades, thanks not only to global warming, but also to the aerial fertilization and water-use efficiency-enhancing effects of atmospheric CO2 enrichment.
Taken together, the results of the studies reviewed in this summary paint a picture of the planet's terrestrial vegetation that is just the opposite of what is promulgated by the world's climate alarmists. Land-based plants of the Arctic and near-Arctic regions of North America are not headed down the road of environmental degradation and toward extinction, but are thriving, thanks in large part to the ongoing rise in the atmosphere's CO2 concentration and global warming.

Tuesday, July 15, 2014

Review finds benefits of CO2 fertilization are even greater in drought than well-watered conditions

A review by SPPI and CO2 Science finds the CO2-fertilization induced percentage increase in plant productivity was nearly always greater under water-stressed conditions than it was when plants were well-watered.

grassland_response
[Illustrations, footnotes and references available in PDF version]
As the air's CO2 content continues to rise, nearly all of earth's plants should exhibit increases in photosynthesis and biomass production; but climate alarmists periodically claim that water stress will negate these benefits. In reviewing the scientific literature of the ten-year period 1983-1994, however, Idso and Idso (1994) concluded that water stress will not negate the CO2-induced stimulation of plant productivity. In fact, they discovered that the CO2-induced percentage increase in plant productivity was nearly always greater under water-stressed conditions than it was when plants were well-watered. And seven years later, Poorter and Perez-Soba (2001)[1]conducted a similar literature review and came to the same conclusion. In this summary, therefore, we provide some background for this phenomenon and highlight some of the most impressive work that has subsequently been done in this area.

Tuesday, October 22, 2013

New review paper finds greening from CO2 throughout Europe

A new paper from SPPI and CO2 Science reviews the scientific literature on Greening of the Earth in Europe, and concludes, "In considering each of the studies conducted in Europe..., we note that within the context of today's obsession with the ongoing rise in the atmosphere's CO2 content, as well as the many environmental catastrophes it has been predicted to produce, the overwhelmingly positive results [of global greening from CO2] that have been obtained are truly remarkable. And this assessment is even more remarkable in light of the fact that the world's climate alarmists claim the warming of the past quarter-century was unprecedented over the last two millennia or more, and that this phenomenon is the greatest threat ever to be faced by the planet. Apparently, the plants of Europe just don't understand the seriousness of the situation."

greening_of_europe.png
[Illustrations, footnotes and references available in PDF version]
Among the many climate-alarmist fears of CO2-induced global warming is the concern that the productivity of the biosphere will decline if global temperatures rise to the extent predicted by computer models. Because of such concern, several researchers have investigated the relationship between temperature, atmospheric CO2, and biospheric productivity across a range of spatial and temporal scales. In this review we examine what has been learned about the subject for locations in Europe.
The recent rise in atmospheric CO2 may already have had significant impacts on productivity, structure and water relations of sclerophyllous shrub vegetation, which tended to offset the detrimental effects of climate change in the region. 
In contrast to model predictions, no single alpine plant species has become extinct, neither in Scandinavia nor in any other part of the world in response to climate warming over the past century.
Considering the results in their totality, the Dutch and Spanish researchers concluded that, over the last two decades of the 20th century, "Europe as a whole has a tendency to greening," and much of it is "seeing an increase in its wood land proportion." 
In considering each of the studies conducted in Europe that are listed above, we note that within the context of today's obsession with the ongoing rise in the atmosphere's CO2 content, as well as the many environmental catastrophes it has been predicted to produce, the overwhelmingly positive results that have been obtained are truly remarkable. And this assessment is even more remarkable in light of the fact that the world's climate alarmists claim the warming of the past quarter-century was unprecedented over the last two millennia or more, and that this phenomenon is the greatest threat ever to be faced by the planet. Apparently, the plants of Europe just don't understand the seriousness of the situation. 

Thursday, August 15, 2013

New paper finds tree-ring proxy temperature data is 'seriously compromised'

More bad news for Michael Mann: A new paper published in Climate of the Past finds that 'modern sample bias' has "seriously compromised" tree-ring temperature reconstructions, producing an "artificial positive signal [e.g. 'hockey stick'] in the final chronology." Needless to say, Mann's hockey sticks are also seriously compromised by statistical techniques that produce hockey sticks from random numbers, use of upside-down data, the trick to hide the decline, the most important tree in the world, use of bristlecone pines which were condemned by the NAS for use as temperature proxies, and a complete lack of validation skill

Excerpt:

Much of the work in dendrochronology, and dendroclimatology in particular, relies on accurate, unbiased reconstructions of tree growth long into the past. As a result, a great deal of effort has been put into trying to isolate important trends and identify potential 5 biases. However, one major bias called “modern sample bias”, first identified by Melvin (2004), is still largely neglected in applied studies, despite its potential impact on all regional curve standardization chronologies (Brienen et al., 2012a). 

Dendrochronologists observed that the older a tree was, the slower it tended to grow, even after controlling for age- and time-driven effects. The result is an artificial downward signal in the regional curve (as the older ages are only represented by the slower growing trees) and a similar artificial positive signal in the final chronology (as earlier years are only represented by the slow growing trees), an effect termed modern sample bias. When this biased chronology is used in climate reconstruction it then implies a relatively unsuitable historic climate. Obviously, the detection of long term 15 trends in tree growth, as might be caused by a changing climate or carbon fertilization, is also seriously compromised (Brienen et al., 2012b). More generally, modern sample bias can be viewed as a form of “differing-contemporaneous-growth-rate bias”, where changes in the magnitude of growth of the tree ring series included in the chronology over time (or age, in the case of the regional curve) skew the final curve, especially 20 near the ends of the chronology where series are rapidly added and removed (Briffa and Melvin, 2011).

Clim. Past Discuss., 9, 4499-4551, 2013
www.clim-past-discuss.net/9/4499/2013/
doi:10.5194/cpd-9-4499-2013


A likelihood perspective on tree-ring standardization: eliminating modern sample bias

J. Cecile, C. Pagnutti, and M. Anand
University of Guelph, School of Environmental Sciences, Guelph, Canada
Abstract. It has recently been suggested that non-random sampling and differences in mortality between trees of different growth rates is responsible for a widespread, systematic bias in dendrochronological reconstructions of tree growth known as modern sample bias. This poses a serious challenge for climate reconstruction and the detection of long-term changes in growth. Explicit use of growth models based on regional curve standardization allow us to investigate the effects on growth due to age (the regional curve), year (the standardized chronology or forcing) and a new effect, the productivity of each tree. Including a term for the productivity of each tree accounts for the underlying cause of modern sample bias, allowing for more reliable reconstruction of low-frequency variability in tree growth.

This class of models describes a new standardization technique, fixed effects standardization, that contains both classical regional curve standardization and flat detrending. Signal-free standardization accounts for unbalanced experimental design and fits the same growth model as classical least-squares or maximum likelihood regression techniques. As a result, we can use powerful and transparent tools such as R2 and Akaike's Information Criteria to assess the quality of tree ring standardization, allowing for objective decisions between competing techniques.

Analyzing 1200 randomly selected published chronologies, we find that regional curve standardization is improved by adding an effect for individual tree productivity in 99% of cases, reflecting widespread differing-contemporaneous-growth rate bias. Furthermore, modern sample bias produced a significant negative bias in estimated tree growth by time in 70.5% of chronologies and a significant positive bias in 29.5% of chronologies. This effect is largely concentrated in the last 300 yr of growth data, posing serious questions about the homogeneity of modern and ancient chronologies using traditional standardization techniques.

Friday, September 19, 2014

New paper: Dubious claims about California ocean habitat derived from tree-rings

Headlines today proclaim "Nearly 600 Years of Tree Rings Show Altered Ocean Habitat" due to an alleged weakening of the California Pacific Ocean coastal upwelling current, based on a paper published in Science.

Examination of the assumptions and data from the paper, however, illustrates how alarming claims in the press can be manufactured from very little scientific evidence. 

Questionable claims include:

1. Assuming the California Pacific Ocean upwelling current strength and variability are closely correlated to tree-rings, which is the proxy used, rather than ocean sediments or an actual ocean proxy.

2. Claiming [in article below the abstract] that the California Pacific Ocean upwelling current strength has weakened in the latter half of the 20th century, while the data below shows no such trend in the tree-ring proxy.

3. Claiming that the California Pacific Ocean upwelling current strength has become more variable because the moisy tree-ring proxy record has a few extra one-year-long dips as indicated by red arrows at the top of the graph below. 

a) these could simply be due to random variation in the very noisy record

b) tree-rings can be related to many factors other than precipitation and temperature, including cloud cover/cosmic rays, solar activity, CO2 plant food levels, ocean & atmospheric oscillations, etc., thus the alleged "increased variability" may not be related to upwelling current changes. 

c) the authors find these dips correlated to El Ninos, which were not exceptionally strong or variable during the latter 20th century, and have become less frequent and weaker since the beginning of the 21st century.

Thus, the paper is based upon multiple questionable assumptions that do not warrant the claims of an alarming trend in marine productivity due to an alleged weakening of coastal upwelling along the California coast.

Tree-ring data from the paper

Editor's Summary:


Rings of ocean upwelling

Coastal upwelling along the coast of California has become more variable than during nearly any period in the past 600 years. Black et al. used a 576-year tree ring record to construct a record of wintertime climate along the California coast. Because wintertime climate depends heavily on coastal upwelling, they were able to determine that upwelling variability has increased more over the past 60 years than for all but two intervals during that time. The apparent causes of the recent trend appear to be unique, resulting in reduced marine productivity and negative impacts on fish, seabirds, and mammals.


Science 19 September 2014:
Vol. 345 no. 6203 pp. 1498-1502
DOI: 10.1126/science.1253209

Six centuries of variability and extremes in a coupled marine-terrestrial ecosystem

Bryan A. Black, et al

Reported trends in the mean and variability of coastal upwelling in eastern boundary currents have raised concerns about the future of these highly productive and biodiverse marine ecosystems. However, the instrumental records on which these estimates are based are insufficiently long to determine whether such trends exceed preindustrial limits. In the California Current, a 576-year reconstruction of climate variables associated with winter upwelling indicates that variability increased over the latter 20th century to levels equaled only twice during the past 600 years. This modern trend in variance may be unique, because it appears to be driven by an unprecedented succession of extreme, downwelling-favorable, winter climate conditions that profoundly reduce productivity for marine predators of commercial and conservation interest.

Nearly 600 Years of Tree Rings Show Altered Ocean Habitat

By Kelly Dickerson, Staff Writer | September 18, 2014 02:35pm ET




Ocean currents that deliver important nutrients to shallow, coastal waters have become weaker and more variable over the last half-century, which could affect fish and other marine animals that nourish themselves in these nutrient-rich waters, according to a new study.

Data records spanning almost 600 years have shown that the strength of coastal upwelling off the west coast of North America has become more variable since 1950. Researchers pieced together this long-term look at ocean trends from an unlikely source: tree rings.

Coastal upwelling happens when winter winds lift deep, nutrient-rich waters up to the shallow layers of the sea. These nutrients fuel phytoplankton growth in the sunlit surface waters. Since 1950, California has experienced more winters with weak coastal upwelling than in the last five centuries. Researchers found that years with weak upwelling were associated with slower growth in fish populations and lower reproduction rates for seabirds, the researchers said.

But the weather pattern that causes the coastal upwelling also blocks storms from coming ashore. This causes drought and stunts the growth of trees. Blue oak trees along the California coast are particularly sensitive to winter precipitation, Bryan Black, assistant professor of marine science at the University of Texas at Austin, told Live Science.

Trees grow a new ring every year. By looking at a cross-section cut through the bark of a tree, scientists can count up the rings and determine a tree's age. Differences in the ring sizes reveal good seasons and bad seasons, with a thick ring signaling that the tree had a good growing season. The researchers found an inverse relationship between tree growth and the well-being of the marine ecosystem, Black explained.

"The winters we see robust growth in the trees, we see poor growth in the marine ecosystem," Black said.

Coastal upwelling happens during the winter when a strong, high-pressure weather system develops along the west coast of the continent. The system spins clockwise and brings in winds from the north. That spin combines with the rotation of the Earth to move the waters off shore and stir up clouds of nutrients. Phytoplankton at the surface rely on this seasonal influx of nutrients. These organisms are the backbone of the marine ecosystem and support huge populations of fish and seabirds.

Some variation in coastal upwelling from year to year is normal, but most direct data records don't go back more than 70 years. This makes it difficult for marine scientists to spot any long-term trends. By studying tree-ring patterns, however, researchers can piece together a much longer record of how coastal upwelling has changed.
To determine how upwelling influenced marine life, the researchers used data on yearly fish population growth since the 1940s, along with data on seabird egg laying and the survival of baby seabirds since the 1970s. By comparing the tree-ring data to the fish and seabird statistics, the researchers found that years with weak upwelling and lots of tree growth correlated with years when fish and seabird populations suffered.

Based on tree ring measurements taken by David Stahle, a tree ring expert and professor of geoscience at the University of Arkansas in Fayetteville, the team found that four out of the 10 weakest upwelling years in the past 600 years occurred after 1950. Seven out of 10 weakest years have happened since 1850 [the end of the Little Ice Age].

While the data show there are years in which bird and fish populations don't fare well, "it's not necessarily indicative of a long-term decline," Black said, since the bird and fish populations usually bounce back within a couple years after a bad season.
Black said it's unclear if climate change is causing the recent high variation in coastal upwelling.

"California climate can be very extreme," Black said. "The 20th century is particularly variable in the context of the last few centuries, but it's not necessarily unique to history."

The upwelling does appear to be linked to the weather pattern El Niño, and climate records have shown El Niño to be unusually variable over the past century. [not according to many other papers - El Nino's were much more intense & variable in the past]. Black said the area has certainly entered a highly variable time, but even a 600-year data record doesn't come close to capturing the whole picture. The recent variation could be part of a larger cycle that scientists can look back far enough to see.

The researchers hope to use [falsified] climate models to predict future variability in coastal upwelling. Details of the study were published online today (Sept. 18) in the journal Science.

Sunday, March 30, 2014

New paper finds significant increase in plant productivity over last 30 years in Asia due to CO2 fertilization

From the latest edition of the NIPCC Report:

The Greening of Asia

Reference: Ichii, K., Kondo, M., Okabe, Y., Ueyama, M., Kobayashi, H., Lee, S.-J., Saigusa, N., Zhu, Z. and Myneni, R.B. 2013. Recent changes in terrestrial gross primary productivity in Asia from 1982 to 2011. Remote Sensing 5: 6043-6062.

According to Ichii et al., (2013), Asia "is characterized by a rapidly growing economy," and China and India in particular "have recently experienced rapid economic growth and a large increase in CO2 emissions." But the greening of Asia is not something the continent's countries are doing to reduce those CO2 emissions. It's something the CO2 emissions are doing for Asia ... and for the rest of the planet's non-ice-bound land as well.

Ichii et al. begin their story by noting they assessed past changes in gross primary productivity (GPP) "using historical satellite observations based on the Normalized Difference Vegetation Index (NDVI) from the Advanced Very High Resolution Radiometer (AVHRR) onboard the National Oceanic and Atmospheric Administration (NOAA) satellite series and four terrestrial biosphere models to identify trends and driving mechanisms related to GPP and NDVI in Asia." Results of their analysis revealed (1) approximately 40% of the continent's non-ice-covered land mass experienced a significant increase in the NDVI over the last 30 years, (2) less than 5% of the studied regions exhibited decreasing vegetation trends, (3) "increases in the NDVI are dominant in the sub-continental regions of Siberia, East Asia, and India," (4) "simulations using the terrestrial biosphere models also showed significant increases in GPP, similar to the results for the NDVI, in boreal and temperate regions," (5) "a modeled sensitivity analysis showed that the increases in GPP are explained by increased temperature and precipitation in Siberia," and (6) "precipitation, solar radiation and CO2 fertilization are important factors in the tropical regions."

In considering all of the above, as the atmosphere's CO2 concentration continues to rise, Earth's terrestrial plants are photosynthesizing at ever greater rates while using water ever more efficiently, which phenomena are leading to a great Greening of the Earth that is literally transforming the planet - for the better - right before our eyes.

Wednesday, March 27, 2013

Hansen's mea culpa? Says global warming has slowed due to surge in coal use

Hansen becoming a skeptic of IPCC?

A paper published today by James Hansen has some startling admissions, including 


  • the effect [forcing] of man-made greenhouse gas emissions has fallen below IPCC projections, despite an increase in man-made CO2 emissions exceeding IPCC projections
  • the growth rate of the greenhouse gas forcing has "remained below the peak values reached in the 1970s and early 1980s, has been relatively stable for about 20 years, and is falling below IPCC (2001) scenarios (figure 5)."
  • the airborne fraction of CO2 [the ratio of observed atmospheric CO2 increase to fossil fuel CO2 emissions] has decreased over the past 50 years [figure 3], especially after the year 2000
  • Hansen believes the explanation for this conundrum is CO2 fertilization of the biosphere from "the surge of fossil fuel use, mainly coal."
  • "the surge of fossil fuel emissions, especially from coal burning, along with the increasing atmospheric CO2 level is 'fertilizing' the biosphere, and thus limiting the growth of atmospheric CO2."
  • "the rate of global warming seems to be less this decade than it has been during the prior quarter century"


According to "coal death train" Hansen,
"However, it is the dependence of the airborne fraction on fossil fuel emission rate that makes the post-2000 downturn of the airborne fraction particularly striking. The change of emission rate in 2000 from 1.5% yr-1 to 3.1% yr-1 (figure 1), other things being equal, would have caused a sharp increase of the airborne fraction (the simple reason being that a rapid source increase provides less time for carbon to be moved downward out of the ocean's upper layers). 
We suggest that the huge post-2000 increase of uptake by the carbon sinks implied by figure 3 is related to the simultaneous sharp increase in coal use (figure 1).
We suggest that the surge of fossil fuel use, mainly coal, since 2000 is a basic cause of the large increase of carbon uptake by the combined terrestrial and ocean carbon sinks. One mechanism by which fossil fuel emissions increase carbon uptake is by fertilizing the biosphere via provision of nutrients essential for tissue building, especially nitrogen, which plays a critical role in controlling net primary productivity and is limited in many ecosystems."
So is the new data we present here good news or bad news, and how does it alter the 'Faustian bargain'? At first glance there seems to be some good news. First, if our interpretation of the data is correct, the surge of fossil fuel emissions, especially from coal burning, along with the increasing atmospheric CO2 level is 'fertilizing' the biosphere, and thus limiting the growth of atmospheric CO2Also, despite the absence of accurate global aerosol measurements, it seems that the aerosol cooling effect is probably increasing based on evidence of aerosol increases in the Far East and increasing 'background' stratospheric aerosols.
Both effects work to limit global warming and thus help explain why the rate of global warming seems to be less this decade than it has been during the prior quarter century."


Climate forcing growth rates: doubling down on our Faustian bargain


OPEN ACCESS
James Hansen, Pushker Kharecha and Makiko Sato
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Perspective

This is a Perspective for the article 2012 Environ. Res. Lett. 7 044035
Rahmstorf et al 's (2012) conclusion that observed climate change is comparable to projections, and in some cases exceeds projections, allows further inferences if we can quantify changing climate forcings and compare those with projections. The largest climate forcing is caused by well-mixed long-lived greenhouse gases. Here we illustrate trends of these gases and their climate forcings, and we discuss implications. We focus on quantities that are accurately measured, and we include comparison with fixed scenarios, which helps reduce common misimpressions about how climate forcings are changing.
Annual fossil fuel CO2 emissions have shot up in the past decade at about 3% yr-1, double the rate of the prior three decades (figure 1). The growth rate falls above the range of the IPCC (2001) 'Marker' scenarios, although emissions are still within the entire range considered by the IPCC SRES (2000). The surge in emissions is due to increased coal use (blue curve in figure 1), which now accounts for more than 40% of fossil fuel CO2 emissions.
Figure 1.
Figure 1. CO2 annual emissions from fossil fuel use and cement manufacture, an update of figure 16 of Hansen (2003) using data of British Petroleum (BP 2012) concatenated with data of Boden et al (2012).
The resulting annual increase of atmospheric CO2 (12-month running mean) has grown from less than 1 ppm yr-1 in the early 1960s to an average ~2 ppm yr-1 in the past decade (figure 2). Although CO2 measurements were not made at sufficient locations prior to the early 1980s to calculate the global mean change, the close match of global and Mauna Loa data for later years suggests that Mauna Loa data provide a good approximation of global change (figure 2), thus allowing a useful estimate of annual global change beginning with the initiation of Mauna Loa measurements in 1958 by Keeling et al(1973).
Figure 2.
Figure 2. Annual increase of CO2 based on data from the NOAA Earth System Research Laboratory (ESRL 2012). CO2change and global temperature change are 12-month running means of differences for the same month of consecutive years. Nino index (Nino3.4 area) is 12-month running mean. Both temperature indices use data from Hansen et al (2010). Annual mean CO2 amount in 1958 was 315 ppm (Mauna Loa) and in 2012 was 394 ppm (Mauna Loa) and 393 ppm (Global).
Interannual variability of CO2 growth is correlated with ENSO (El Nino Southern Oscillation) variations of tropical temperatures (figure 2). Ocean–atmosphere CO2 exchange is affected by ENSO (Chavez et al 1999), but ENSO seems to have a greater impact on atmospheric CO2 via the terrestrial carbon cycle through effects on the water cycle, temperature, and fire, as discussed in a large body of literature (referenced, e.g., by Schwalm et al 2011). In addition, volcanoes, such as the 1991 Mount Pinatubo eruption, slow the increase of atmospheric CO2 (Rothenberg et al 2012), at least in part because photosynthesis is enhanced by the increased proportion of diffuse sunlight (Gu et al 2003, Mercado et al 2009). Watson (1997) suggests that volcanic dust deposited on the ocean surface may also contribute to CO2 uptake by increasing ocean productivity.
An important question is whether ocean and terrestrial carbon sinks will tend to saturate as human-made CO2 emissions continue. Piao et al (2008) and Zhao and Running (2010) suggest that there already may be a reduction of terrestrial carbon uptake, while Le Quéréet al (2007) and Schuster and Watson (2007) find evidence of decreased carbon uptake in the Southern Ocean and North Atlantic Ocean, respectively. However, others (Knorr 2009, Sarmiento et al 2010, Ballantyneet al 2012) either cast doubt on the reality of a reduced uptake strength or find evidence for increased uptake.
An informative presentation of CO2 observations is the ratio of annual CO2 increase in the air divided by annual fossil fuel CO2 emissions (Keeling et al 1973), the 'airborne fraction' (figure 3, right scale). An alternative definition of airborne fraction includes in the denominator of this ratio an estimated net anthropogenic CO2 source from changes in land use, but this latter term is much more uncertain than the two terms involved in the Keeling et al (1973) definition. For example, analysis by Harris et al (2012) reveals a range as high as a factor of 2–4 in estimates of recent land use emissions; see also the discussion by Sarmiento et al (2010). However, note that the airborne fraction becomes smaller when estimated land use emissions are included, with the uptake fraction (one minus airborne fraction) typically greater than 0.5.
Figure 3.
Figure 3. Fossil fuel CO2 emissions (left scale) and airborne fraction, i.e., the ratio of observed atmospheric CO2 increase to fossil fuel CO2 emissions. Final three points are 5-, 3- and 1-year means.
The simple Keeling airborne fraction, clearly, is not increasing (figure 3). Thus the net ocean plus terrestrial sink for carbon emissions has increased by a factor of 3–4 since 1958, accommodating the emissions increase by that factor.
Remarkably, and we will argue importantly, the airborne fraction has declined since 2000 (figure 3) during a period without any large volcanic eruptions. The 7-year running mean of the airborne fraction had remained close to 60% up to 2000, except for the period affected by Pinatubo. The airborne fraction is affected by factors other than the efficiency of carbon sinks, most notably by changes in the rate of fossil fuel emissions (Gloor et al 2010). However, it is the dependence of the airborne fraction on fossil fuel emission rate that makes the post-2000 downturn of the airborne fraction particularly striking. The change of emission rate in 2000 from 1.5% yr-1 to 3.1% yr-1 (figure 1), other things being equal, would have caused a sharp increase of the airborne fraction (the simple reason being that a rapid source increase provides less time for carbon to be moved downward out of the ocean's upper layers).
A decrease in land use emissions during the past decade (Harris et al 2012) could contribute to the decreasing airborne fraction in figure 3, although Malhi (2010) presents evidence that tropical forest deforestation and regrowth are approximately in balance, within uncertainties. Land use change can be only a partial explanation for the decrease of the airborne fraction; something more than land use change seems to be occurring.
We suggest that the huge post-2000 increase of uptake by the carbon sinks implied by figure 3 is related to the simultaneous sharp increase in coal use (figure 1). Increased coal use occurred primarily in China and India (Boden et al2012; BP 2012; see graphs at www.columbia.edu/~mhs119/Emissions/Emis_moreFigs/). Satellite radiance measurements for July–December, months when desert dust does not dominate aerosol amount, yield an increase of aerosol optical depth in East Asia of about 4% yr-1 during 2000–2006 (van Donkelaar et al 2008). Associated gaseous and particulate emissions increased rapidly after 2000 in China and India (Lu et al 2011, Tian et al 2010). Some decrease of the sulfur component of emissions occurred in China after 2006 as wide application of flue-gas desulfurization began to be initiated (Lu et al 2010), but this was largely offset by continuing emission increases from India (Lu et al 2011).
We suggest that the surge of fossil fuel use, mainly coal, since 2000 is a basic cause of the large increase of carbon uptake by the combined terrestrial and ocean carbon sinks. One mechanism by which fossil fuel emissions increase carbon uptake is by fertilizing the biosphere via provision of nutrients essential for tissue building, especially nitrogen, which plays a critical role in controlling net primary productivity and is limited in many ecosystems (Gruber and Galloway 2008). Modeling (e.g., Thornton et al 2009) and field studies (Magnani et al 2007) confirm a major role of nitrogen deposition, working in concert with CO2 fertilization, in causing a large increase in net primary productivity of temperate and boreal forests. Sulfate aerosols from coal burning also might increase carbon uptake by increasing the proportion of diffuse insolation, as noted above for Pinatubo aerosols, even though the total solar radiation reaching the surface is reduced.
Thus we see the decreased CO2 airborne fraction since 2000 as sharing some of the same causes as the decreased airborne fraction after the Pinatubo eruption (figure 3). CO2 fertilization is likely the major effect, as a plausible addition of 5 TgN yr-1 from fossil fuels and net ecosystem productivity of 200 kgC kgN-1 (Magnani et al 2007, 2008) yields an annual carbon drawdown of 1 GtC yr-1, which is of the order of what is needed to explain the post-2000 anomaly in airborne CO2. However, an aerosol-induced increase of diffuse radiation might also contribute. Although tropospheric aerosol properties are not accurately monitored, there are suggestions of an upward trend of stratospheric background aerosols since 2000 (Hofmann et al 2009, Solomon et al 2011), which could be a consequence of more tropospheric aerosols at low latitudes where injection of tropospheric air into the stratosphere occurs (Holton et al 1995). We discuss climate implications of the reduced CO2 airborne fraction after presenting data for other greenhouse gases.
Atmospheric CH4 is increasing more slowly than in IPCC scenarios (figure 4), which were defined more than a decade ago (IPCC 2001). However, after remaining nearly constant for several years, CH4 has increased during the past five years, pushing slightly above the level that was envisaged in the Alternative Scenario of Hansen et al (2000). Reduction of CH4, besides slowdown in CO2 growth in the twenty first century and a decline of CO2 in the twenty second century, is a principal requirement to achieve a low climate forcing that stabilizes climate, in part because CH4 also affects tropospheric ozone and stratospheric water vapor. The Alternative Scenario, defined in detail by Hansen and Sato (2004), keeps maximum global warming at ~1.5 °C relative to 1880–1920, under the assumption that fast-feedback climate sensitivity is ~3 °C for doubled CO2 (Hansen et al 2007). The Alternative Scenario allows CO2 to reach 475 ppm in 2100 before declining slowly; this scenario assumes that reductions of non-CO2 greenhouse gases and black carbon aerosols can be achieved sufficient to balance the warming effect of likely future decreases of reflective aerosols.
Figure 4.
Figure 4. Observed atmospheric CH4 amount and scenarios for twenty first century. Alternative scenario (Hansen et al2000, Hansen and Sato 2004) yields maximum global warming ~1.5 °C above 1880–1920. Other scenarios are from IPCC (2001). Forcing on right hand scale is adjusted forcing, Fa, relative to values in 2000 (Hansen et al 2007).
There are anthropogenic sources of CH4 that potentially could be reduced, indeed, the leveling off of CH4 amount during the past 20 years seems to have been caused by decreased venting in oil fields (Simpson et al 2012), but the feasibility of overall CH4 reduction also depends on limiting global warming itself, because of the potential for amplifying climate-CH4feedbacks (Archer et al 2009, Koven et al 2011). Furthermore, reduction of atmospheric CH4 might become problematic if unconventional mining of gas, such as 'hydro-fracking', expands widely (Cipolla 2009), as discussed further below.
The growth rate for the total climate forcing by well-mixed greenhouse gases has remained below the peak values reached in the 1970s and early 1980s, has been relatively stable for about 20 years, and is falling below IPCC (2001) scenarios (figure 5). However, the greenhouse gas forcing is growing faster than in the Alternative Scenario. MPTGs and OTGs in figure 5 are Montreal Protocol Trace Gases and Other Trace Gases (Hansen and Sato 2004).
Figure 5.
Figure 5. Five-year mean of the growth rate of climate forcing by well-mixed greenhouse gases, an update of figure 4 of Hansen and Sato (2004). Forcing calculations use equations of Hansen et al (2000). The moderate uncertainties in radiative calculations affect the scenarios and actual greenhouse gas results equally and thus do not alter the conclusion that the actual forcing falls below that of the IPCC scenarios.
If greenhouse gases were the only climate forcing, we would be tempted to infer from Rahmstorf's conclusion (that actual climate change has exceeded IPCC projections) and our conclusion (that actual greenhouse gas forcings are slightly smaller than IPCC scenarios) that actual climate sensitivity is on the high side of what has generally been assumed. Although that may be a valid inference, the evidence is weakened by the fact that other climate forcings are not negligible in comparison to the greenhouse gases and must be accounted for.
Natural forcings, by changing solar irradiance and volcanic aerosols, are well-measured since the late 1970s and included in most IPCC (2007) climate simulations. The difficulty is human-made aerosols. Aerosols are readily detected in satellite observations, but determination of their climate forcing requires accurate knowledge of changes in aerosol amount, size distribution, absorption and vertical distribution on a global basis—as well as simultaneous data on changes in cloud properties to allow inference of the indirect aerosol forcing via induced cloud changes. Unfortunately, the first satellite mission capable of measuring the needed aerosol characteristics (Aerosol Polarimetry Sensor on the Glory satellite, (Mishchenko et al 2007)) suffered a launch failure and as yet there are no concrete plans for a replacement mission.
The human-made aerosol climate forcing thus remains uncertain. IPCC (2007) concludes that aerosols are a negative (cooling) forcing, probably between -0.5 and -2.5 W m-2. Hansen et al (2011), based mainly on analysis of Earth's energy imbalance, derive an aerosol forcing -1.6 ± 0.3 W m-2, consistent with an analysis of Murphy et al (2009) that suggests an aerosol forcing about -1.5 W m-2 (see discussion in Hansen et al (2011)). This large negative aerosol forcing reduces the net climate forcing of the past century by about half (IPCC 2007; figure 1 of Hansen et al 2011). Coincidentally, this leaves net climate forcing comparable to the CO2 forcing alone.
Reduction of the net human-made climate forcing by aerosols has been described as a 'Faustian bargain' (Hansen and Lacis 1990, Hansen 2009), because the aerosols constitute deleterious particulate air pollution. Reduction of the net climate forcing by half will continue only if we allow air pollution to build up to greater and greater amounts. More likely, humanity will demand and achieve a reduction of particulate air pollution, whereupon, because the CO2 from fossil fuel burning remains in the surface climate system for millennia, the 'devil's payment' will be extracted from humanity via increased global warming.
So is the new data we present here good news or bad news, and how does it alter the 'Faustian bargain'? At first glance there seems to be some good news. First, if our interpretation of the data is correct, the surge of fossil fuel emissions, especially from coal burning, along with the increasing atmospheric CO2 level is 'fertilizing' the biosphere, and thus limiting the growth of atmospheric CO2. Also, despite the absence of accurate global aerosol measurements, it seems that the aerosol cooling effect is probably increasing based on evidence of aerosol increases in the Far East and increasing 'background' stratospheric aerosols.
Both effects work to limit global warming and thus help explain why the rate of global warming seems to be less this decade than it has been during the prior quarter century. This data interpretation also helps explain why multiple warnings that some carbon sinks are 'drying up' and could even become carbon sources, e.g., boreal forests infested by pine bark beetles (Kurz et al 2008) and the Amazon rain forest suffering from drought (Lewis et al 2011), have not produced an obvious impact on atmospheric CO2.
However, increased CO2 uptake does not necessarily mean that the biosphere is healthier or that the increased carbon uptake will continue indefinitely (Matson et al 2002, Galloway et al 2002, Heimann and Reichstein 2008, Gruber and Galloway 2008). Nor does it change the basic facts about the potential magnitude of the fossil fuel carbon source (figure 6) and the long lifetime of the CO2 in the surface carbon reservoirs (atmosphere, ocean, soil, biosphere) once the fossil fuels are burned (Archer 2005). Fertilization of the biosphere affects the distribution of the fossil fuel carbon among these reservoirs, at least on the short run, but it does not alter the fact that the fossil carbon will remain in these reservoirs for millennia.
Figure 6.
Figure 6. Fossil fuel CO2 emissions and carbon content (1 ppm atmospheric CO2~2.12 GtC). Historical emissions are from Boden et al (2012). Estimated reserves and potentially recoverable resources are based on energy content values of Energy Information Administration (EIA 2011), German Advisory Council (GAC 2011), and Global Energy Assessment (GEA 2012). We convert energy content to carbon content using emission factors of Table 4.2 of IPCC (2007) for coal, gas, and conventional oil, and, following IPCC, we use an emission factor of unconventional oil the same as that for coal.
Humanity, so far, has burned only a small portion (purple area in figure 6) of total fossil fuel reserves and resources. Yet deleterious effects of warming are apparent (IPCC 2007), even though only about half of the warming due to gases now in the air has appeared, the remainder still 'in the pipeline' due to the inertia of the climate system (Hansen et al 2011). Already it seems difficult to avoid passing the 'guardrail' of no more than 2 °C global warming that was agreed in the Copenhagen Accord of the United Nations Framework Convention on Climate Change (UNFCCC 2010). And Hansen et al (2008), based primarily on paleoclimate data and evidence of deleterious climate impacts already at 385 ppm CO2, concluded that an appropriate initial target for CO2 was 350 ppm, which implied a global temperature limit, relative to 1880–1920 of about 1 °C. What is clear is that most of the remaining fossil fuels must be left in the ground if we are to avoid dangerous human-made interference with climate.
The principal implication of our present analysis probably relates to the Faustian bargain. Increased short-term masking of greenhouse gas warming by fossil fuel particulate and nitrogen pollution represents a 'doubling down' of the Faustian bargain, an increase in the stakes. The more we allow the Faustian debt to build, the more unmanageable the eventual consequences will be. Yet globally there are plans to build more than 1000 coal-fired power plants (Yang and Cui 2012) and plans to develop some of the dirtiest oil sources on the planet (EIA 2011). These plans should be vigorously resisted. We are already in a deep hole—it is time to stop digging.
Acknowledgments
We thank ClimateWorks, Energy Foundation, Gerry Lenfest (Lenfest Foundation), Lee Wasserman (Rockefeller Family Foundation), and Stephen Toben (Flora Family Foundation) for research and communications support.