Blog Archive

Showing posts with label Tipping elements. Show all posts
Showing posts with label Tipping elements. Show all posts

Saturday, June 14, 2014

Climate Roulette: Elmar Kriegler et al.

Climate roulette

by James Dacey, physicsworld.com, March 16, 2009

Mankind is playing a Russian roulette with the climate, according to a study published today in the Proceedings of the National Academy of Sciences.

Elmar Kriegler, of the Potsdam Institute for Climate Impact Research, and his colleagues sought to find out what leading scientists really think will happen to the climate.

So Kriegler surveyed 43 scientists to gauge the impact of rising temperatures on five major components of the global climate system.

They calculate a 1-in-6 chance that a “tipping event” will occur if the temperature increases by 2-4 C in the next 200 years.

The 5 systems concerned are:

  • Major changes in the North Atlantic Ocean circulation
  • The Greenland and West Antarctic ice sheets
  • The Amazon rainforest and El Nino

They define a tipping point as “the event of initiating the transition, or making its future initiation inevitable.” 

Essentially they are saying that beyond these points the climate will reach a kind of elastic limit -- beyond which, we will feel the wrath of the climate, and there’ll be nothing we can do about it.

Realizing that previous surveys have been met with a fair degree of apathy, they used “imprecise probabilities” -- a part of Bayesian statistics.

This new mathematics has been controversial, but advocates say it can weigh up a given hypothesis in a more rounded way than classical statistics.

Developed in the 1980s and 1990s, Bayesian statistics seem to have gained most traction in the field of operations research and economic decision making.

“The currently discussed long-term targets of 50% reduction globally by 2050 (and 80% reduction for the industrial countries), with a continuing reduction after 2050, is an important step in this direction, but does not guarantee the reaching of the 2 degree target,” Kriegler told physicsworld.com.

This may sound like a very gloomy forecast, but Kriegler was a bit more pragmatic about taking coordinated international action:

“Nevertheless, these [targeted reductions] are a useful benchmark to focus the minds of politicians and society. Reaching this goal requires at least the following -- in the order of importance:

  1. A massive decarbonization of the energy system, starting in the electricity sector
  2. A strong increase in energy efficiency
  3. A stop to tropical deforestation, and an increase of the forest area in the tropics in the long run
  4. A massive reduction of CH4 and N2O emissions from the agricultural sector

http://www.iop.org/mt4/mt-tb.cgi/2860

Tuesday, September 10, 2013

Graham Readfearn: Australia's Department of Defence concerned about climate change threat multipliers

Climate change will 'exacerbate existing problems': Defence

by Graham Readfearn, ABC Australia, Environment, September 11, 2013
Navy helicopter lands on HMAS Sydney
As first responders and humanitarian assistance providers, the armed forces will be busy in a climate changed future. Credit: Australian Defence Image Library
Extreme weather and rising sea levels caused by climate change will significantly increase the need for an effective defence force. It's why the military are taking notice of the scientists.

WHEN AUSTRALIAN professors Colin Butler, Tony McMichael and Will Steffen stood up to talk climate change at a series of briefings in Canberra earlier this year there was something very different about the audience.

This wasn't a forum organised by an environment group where the seats are taken up by the usual cohort of the climate concerned.

Instead, this audience was full of hardheaded military types and members of the defence community - people worried more about conflict and geopolitics than wind turbines and carbon footprints. This invitation to speak on climate change had come from Australia's Department of Defence.

"They wanted to get a handle on the idea of tipping elements in the climate system that could cause rapid change that would be very difficult for human societies to deal with," says Professor Steffen, an Australian Climate Commissioner and executive director of the Climate Change Institute at the Australian National University.

Butler, Australian Research Council Future Fellow at the University of Canberra, displayed maps of places where climate change might act as a "threat multiplier" - food and water shortages in eastern parts of Asia and forced migration across Africa.

"The maintenance of peace and preventing war depends on more than just military personnel and hardware," says Professor Butler. "It also depends on what I call the 'determinants of peace' - that is, having enough basic resources of food, shelter and energy."

It's a far cry from 2009, when a Defence White Paper concluded that climate change would not be a serious consideration for the Defence Forces until at least 2030.

Australia's current National Security Strategy lists climate change as a broad global challenge "with national security implications" alongside the more obvious threats of corruption and the resurgence of violent political groups.

Last month in the journal Science, researchers reported the results of an analysis of "45 different conflict data sets" and found "strong causal evidence linking climatic events to human conflict."

When rainfall and temperatures started to shift, the study found a systematic increase in "the risk of many types of conflict."

One of the study's authors, the University of California's Marshall Burke, told the ABC that if societies in the future responded to these changes in the same way as previous ones, then, for example, "We could see a 50 per cent or greater increase in civil conflict in sub-Saharan Africa as a result of climate change by about 2050."

Does this mean war?

Air Vice-Marshal Neil Hart is head of the Joint Capability Coordination Division at the Department of Defence. His responsibilities include examining the potential impacts of global changes on the preparedness of the Australian Defence Force.

He says that changes in the global climate system have the potential to "exacerbate existing problems" through flooding of low-lying regions, more frequent and severe natural disasters, and shifting rainfall. This could lead to loss of food production in some areas and "climate-driven large-scale human migration."

"Taken together, these factors point to the potential for an increased demand for humanitarian assistance, disaster relief and stabilisation operations over coming decades," he says.

The Australian Government's latest Defence White Paper, published in May, found that global energy, food and water resources were under pressure from population growth, rising affluence and climate change.

"As a frequent first responder to national and international emergencies, Defence needs to be prepared for some of the consequences of global climate system changes, such as potentially increased demands for the Australian Defence Force to undertake humanitarian and disaster relief responses both domestically and across the region."
 
As a threat multiplier, it has the potential to generate and exacerbate destabilising conditions that could reshape the regional security environment.
  The commander of the US Navy in the Pacific, Admiral Samuel Locklear, agrees climate change is a real threat to peace. Earlier this year he said climate change was the greatest long-term security threat for his region.

Rising sea levels could displace communities, he said, and the impacts from climate change could "cripple the security environment."

Rear Admiral Neil Morisetti is the UK's special representative on climate change. Appointed by the Foreign Office, he says climate change will likely "accelerate global instability" and that it challenges "our ability to deliver our core mission of providing national security."

Security council

Professor Tony McMichael, an expert on the impacts of climate change on human health at Australian National University, believes the defence department "can see quite clearly that the world around us is changing pretty rapidly and that has considerable implications for the defence forces on several fronts - both beyond our borders and within."

He says climate change impacts are already causing health issues in the Asia Pacific region, in particular from sea levels rising and damaging land used for growing food.

"So there are concerns that food supplies, agricultural land and even habitable land is now under threat. That represents a number of immediate threats to nutrition, health and safety that in the longer term is likely to disrupt communities."

In September, Australia will take its turn as president of the United Nations Security Council, where there have been long-running calls for more formal recognition of the climate threat.

One of Australia's leading security think tanks, the Australian Strategic Policy Institute (ASPI), produced a detailed report on climate change and Australia's defence force in March.

The report suggested that climate change had "generated little interest in either the Australian Defence Force (ADF) or the Australian Defence Department" compared with the UK and the United States.

"Climate change is transforming the conventional roles of security forces," the report said. "As a threat multiplier, it has the potential to generate and exacerbate destabilising conditions that could reshape the regional security environment."

But the report also pointed out the ADF had been called on to help communities after the 2009 Victorian bushfires, the Queensland floods and Cyclone Yasi in 2011. These events, the report said, had resulted in some of the largest defence deployments ever in Australia.

As the issue of refugees continues to dominate the political landscape, Professor McMichael says the current flows of people "really are just a taste of what's to come as living conditions deteriorate in many parts of the world."

The ASPI report highlighted how there were 250 million people living in the river deltas of Asia. In particular, the report said the Mekong and Ganges-Brahmaputra deltas were regarded as being at extreme risk from sea level rise.

"Many defence forces around the world are obviously seeing the strategic implications of a rapidly destabilising climate and what that might mean," adds Professor Steffen. "It's simply in their interest to be prepared."

http://www.abc.net.au/environment/articles/2013/09/11/3845626.htm

Friday, May 25, 2012

SciAm: Climate Armageddon: How the World's Weather Could Quickly Run Amok [Excerpt]


Climate Armageddon: How the World's Weather Could Quickly Run Amok [Excerpt]

Climate scientists think a perfect storm of climate "flips" could cause massive upheavals in a matter of years
Fred Guterl, The Fate of the Species: Why the Human Race May Cause Its Own Extinction and How We Can Stop It, The eminent British scientist James Lovelock, back in the 1970s, formulated his theory of Gaia, which held that the Earth was a kind of super organism. It had a self-regulating quality that would keep everything within that narrow band that made life possible. If things got too warm or too cold—if sunlight varied, or volcanoes caused a fall in temperatures, and so forth—Gaia would eventually compensate. This was a comforting notion. It was also wrong, as Lovelock himself later concluded. "I have to tell you, as members of the Earth's family and an intimate part of it, that you and especially civilization are in grave danger," he wrote in the Independent in 2006.
The world has warmed since those heady days of Gaia, and scientists have grown gloomier in their assessment of the state of the world's climate. NASA climate scientist James Hanson has warned of a "Venus effect," in which runaway warming turns Earth into an uninhabitable desert, with a surface temperature high enough to melt lead, sometime in the next few centuries. Even Hanson, though, is beginning to look downright optimistic compared to a new crop of climate scientists, who fret that things could head south as quickly as a handful of years, or even months, if we're particularly unlucky. Ironically, some of them are intellectual offspring of Lovelock, the original optimist gone sour.
The true gloomsters are scientists who look at climate through the lens of "dynamical systems," a mathematics that describes things that tend to change suddenly and are difficult to predict. It is the mathematics of the tipping point—the moment at which a "system" that has been changing slowly and predictably will suddenly "flip." The colloquial example is the straw that breaks that camel's back. Or you can also think of it as a ship that is stable until it tips too far in one direction and then capsizes. In this view, Earth's climate is, or could soon be, ready to capsize, causing sudden, perhaps catastrophic, changes. And once it capsizes, it could be next to impossible to right it again.
The idea that climate behaves like a dynamical system addresses some of the key shortcomings of the conventional view of climate change—the view that looks at the planet as a whole, in terms of averages. A dynamical systems approach, by contrast, consider climate as a sum of many different parts, each with its own properties, all of them interdependent in ways that are hard to predict.
One of the most productive scientists in applying dynamical systems theory to climate is Tim Lenton at the University of East Anglia in England. Lenton is a Lovelockian two generations removed— his mentors were mentored by Lovelock. "We are looking quite hard at past data and observational data that can tell us something," says Lenton. "Classical case studies in which you've seen abrupt changes in climate data. For example, in the Greenland ice-core records, you're seeing climate jump. And the end of the Younger Dryas," about fifteen thousand years ago, "you get a striking climate change." So far, he says, nobody has found a big reason for such an abrupt change in these past events—no meteorite or volcano or other event that is an obvious cause—which suggests that perhaps something about the way these climate shifts occur simply makes them sudden.
Lenton is mainly interested in the future. He has tried to look for things that could possibly change suddenly and drastically even though nothing obvious may trigger them. He's come up with a short list of nine tipping points—nine weather systems, regional in scope, that could make a rapid transition from one state to another.

Each year, the sun shines down on the dark surface of the Indian Ocean, and moist, warm air rises and forms clouds. This rising heat and the moisture form a powerful weather system, a natural pump that pulls up water and moves it in vast quantities hundreds of miles to the mainland. This is the Indian monsoon, which deposits rainfall on thousands of square miles of farmland. About a billion people, most of them poor, depend for their daily bread on crops that depend in turn on the reliability and regularity of the Indian monsoons.
India is a rapidly developing country with hundreds of millions of citizens who want to move into the middle class, drive cars and cool their homes with air-conditioning. It is also a country of poor people, many who still rely on burning agricultural waste to heat their homes and cook their suppers. Smoke from household fires has been a big source of pollution in the subcontinent, and it could disrupt the monsoons, too. The soot from these fires and from automobiles and buses in the ever more crowded cities rises into the atmosphere and drifts out over the Indian Ocean, changing the atmospheric dynamics upon which the monsoons depend. Aerosols (soot) keep much of the sun's energy from reaching the surface, which means the monsoon doesn't get going with the same force and takes longer to gather up a head of steam. Less rain makes it to crops.
At the same time, the buildup of greenhouse gases, coming mainly from developed countries in the northern hemisphere, has a very different effect on the Indian summer monsoons: it acts to make them stronger.
These two opposite influences make the fate of the monsoon difficult to predict and subject to instability. A small influence—a bit more carbon dioxide in the atmosphere, and a bit more brown haze—could have an out- size effect. Lenton believes that the monsoons could flip from one state to another as quickly as one year. What happens then is not a question that Lenton can answer with certainty, but he foresees two possibilities.
One is that the monsoons grow in force and intensity, but come less frequently. We have already seen hints of this in the newspapers. In the last few years rains have grown erratic and less frequent, but when they do come, they tend to dump an enormous amount of water, and in places where they wouldn't normally do so. This is almost as bad for farmers as drought, since the rain falls on parched ground with extra force, and much of it runs off without soaking into the ground, and it causes damage to boot by washing away soil and plants. The flooding that devastated Pakistan in 2011 is a case in point. If this trend continued and strengthened in intensity, it would be bad news for the two thirds of the Indian workforce that depends on farming. It would be nasty for the Indian economy—agriculture accounts for 25% of GDP. A permanently erratic and harsh monsoon would depress crop yields, increase erosion on farms, and cause a rise in global food prices as India is forced to import more food.
The other possibility is even worse: the monsoons could shut down entirely. This would be an unmitigated catastrophe. A sudden stopping of monsoon rain, which accounts for 80% of rainfall in India, could throw a billion people into danger of starvation. It would change the Indian landscape, wiping out native species of plants and animals, force farms into bankruptcy, and exacerbate water shortages that are already creating conflict. The Indian government would almost certainly be unable to cope with a disaster of such proportions. Refugees by the hundreds of millions would stream into big cities such as Mumbai and Bangalore, looking for some hope of survival. It would create a humanitarian crisis of unprecedented proportions. Lenton foresees a similar danger of sudden change in the West African monsoon, the second tipping point.
Tipping point number three in Lenton's list is the sea ice of the North Pole. For years the ice has been thinning and retreating more and more during the summer. Soon it may disappear completely during the summer months. We may already have reached this tipping point—a transition to a new state in which the North Pole is ice-free during summer months is already at hand. Eventually the North Pole may flip and be free of ice year-round. The knock-on effects of such a transition would be huge—they would cause a marked increase of warming at the pole, since open water absorbs more of the sun's energy than ice-covered seas. The effect of a year-round, ice-free North Pole would be like heating Greenland on a skillet.

The fourth tipping point is Greenland's glaciers, which hold enough water to cause sea levels to rise by more than 20 feet. It takes a while for that much ice to melt, of course. Currently, the Intergovernmental Panel on Climate Change projections say it will take on the order of a thousand years. Scientists currently don't have a good handle on how such a big hunk of ice melts. For plenty of reasons it could happen much more quickly—recent observations suggest that the melting has not only exceeded what models predict, but has also begun to accelerate. A marked retreat of ice in coastal areas has led to an infusion of ocean water, which is relatively warm and promotes melting.
All this leads Lenton to conclude that the Greenland ice sheets could make a transition to an alternate state in 300 years, rather than a thousand or more. Such a quick melting of Greenland would have a knock-on effect on the ocean currents that run up the Atlantic, bringing warmth to northern Europe and Scandinavia, the Atlantic thermohaline circulation. A sudden change in this current could plunge much of Europe back into an ice age. Scientists were getting nervous about this possibility a few years ago, until further research suggested that any switch in current is a long way off—perhaps a thousand years off. Lenton argues that an accelerated melting of Greenland would throw more freshwater on the northern Atlantic than these reassuring calculations have taken into account. "The canary in the coal mine is the Arctic losing its summer sea-ice cover," says Lenton. "I am really worried about the Greenland ice sheet. It's already losing mass and shrinking."
If Greenland flipped into a completely ice-free state, it would cause massive rises in sea level—on the order of 6 or 7 meters. Even if this took 300 years to happen, "it would be an absolute disaster," says Lenton, "a real game changer." At such a rate of sea-level rise, it would become more and more difficult to protect coastlines. Low-lying areas would have to be abandoned. That includes cities such as New York, Los Angeles, San Francisco, London, Tokyo, and Hong Kong, not to mention the entire state of Florida and vast swaths of Indochina.
Tipping point number six—the West Antarctic Ice Sheet—is even scarier. It has enough ice on it to raise sea levels by about 80 meters. The ice is melting, but slowly—most worst-case scenarios give the ice centuries to melt. But there are some niggling doubts about whether the West Antarctic Ice Sheet could calve into the sea more quickly than expected, as the glaciers contract. If that happened, it would push sea levels up by 5 meters in as short a time as a century. Most experts consider this unlikely, but if it did happen, Lenton thinks the sheet could flip in as little time as 300 years—three times faster than most models predict.
Water and ice aren't the only worries. The Amazon rain forest, the seventh of Lenton's tipping points, is also in jeopardy. Rain forests are always pretty wet, but they have dry seasons, and those dry seasons turn out to be a limiting factor on the survival of flora and fauna. As loggers reduce the number of trees that produce moisture to feed the gathering rains, the drier the dry seasons get, and the longer they last. Lately dry seasons in the Amazon have gotten more severe and have put a crimp on the survival of many of the trees that form the forest canopy, which is the backbone of the rain-forest ecosystem. As the dry season continues to lengthen, the flora draw more and more water from the soil, which eventually begins to dry out. The trees get stressed and begin to die. There's more fodder on the forest floor for wildfires. This is not hypothetical; it's already begun to happen. We saw this during the estimated 12,000 wildfires that occurred in the Amazon during the drought of 2010. As the forest loses more and more trees, it loses its ability to feed the weather patterns with warm, moist air.

If and when the Amazon flips into a drier state, it would have an big effect on weather patterns. The Amazon is basically a big spot of wet tropics. Knock out the trees and lose that moist air, and the regional circulation pattern changes as well.  A similar flip could occur in Canada's boreal forests (tipping point number eight). A die-off of these forests would release much of the 50-100 billion tons of carbon now trapped in permafrost.
The basic weather patterns that we've grown used to on weather maps are also subject to rapid change. Among them is what's called the El Niño–Southern Oscillation — the ninth and last of Lenton's tipping points. El Niño involves movement of a blob of warm water on the west side of the Pacific Ocean toward the east, bringing with it moist warm air. When this warm water cools and circulates back westward, El Niño comes to an end and La Niña begins. These two patterns alternate roughly every 5 years. From observations, scientists have begun to see a more erratic trade-off between these two patterns. They fret that the weather patterns could flip to some different state—perhaps a more frequent switching off between the patterns. That would have a detrimental effect on the Amazon, says Lenton, exacerbating trends that already threaten to destroy the rain forest.
The real nightmare scenario is when all these changes begin to reinforce one another. The Arctic loses its summer sea ice, causing Greenland's ice to melt and encouraging the boreal forests to change as well. The freshwater runoff changes the thermohaline dynamics and affects the jet stream. The El Niño–Southern Oscillation and the Amazon interact in such a way as to reinforce one another, perhaps affecting the monsoon in India and Africa. "It wouldn't be such a silly thing to say that if you meddle with one, you might affect the other," says Lenton. "Which direction the causality would go is not always obvious. We know it's connected, we know it's nonlinear, we know they somehow couple together. When you see one change, you see changes in the other."
"Then we start talking about domino dynamics," says Lenton. "The worse case would be that kind of scenario in which you tip one thing and that encourages the tipping of another. You get these cascading effects."
It would take a perfect storm of climate flips to get us to this particular worst-case scenario. If it does come to pass, however, at least it will happen quickly.

Saturday, March 3, 2012

Peter Wadhams and John Nissen present before the HOC Environmental Audit Committee of the U.K. Parliament on "Protecting the Arctic"



HOC ENVIRONMENTAL AUDIT COMMITTEE
Tuesday 21 February 2012

Thatcher Room 
Meeting started on Tuesday 21 February at 2:12 p.m. Ended at 4:08 p.m.
Protecting the Arctic
Witnesses

  1. Professor Tim Lenton, University of Exeter, Professor Peter Wadhams, University of Cambridge, and John Nissen, Chair, Arctic Methane Emergency Working Group

Visit the Committee's homepage.


Saturday, August 6, 2011

Bombshell: Warming May Shrink Russian Permafrost 30% by 2050 [with concurrent release by 2030 of more than 1 billion tons of carbon per year]

Bombshell: Warming May Shrink Russian Permafrost 30% by 2050




Browse image of Permafrost Extent
MOSCOW — Russia’s vast permafrost areas may shrink by a third by the middle of the century due to global warming, endangering infrastructure in the Arctic zone, an emergencies ministry official said Friday.
This AFP story snuck across my desk on little cat feet.  It didn’t get much attention,  in part because they buried the lede in the very last sentence:
Scientists have said that permafrost thawing will set off another problem because the process will release massive amounts of greenhouse gas methane currently trapped in the frozen soil.
Ya think?
The permafrost permamelt contains a staggering “1.5 trillion tons of frozen carbon, about twice as much carbon as contained in the atmosphere, much of which would be released as methane.  Methane is 25 times as potent a heat-trapping gas as CO2 over a 100-year time horizon, but 72 (to 100) times as potent over 20 years!
The carbon is locked in a freezer in the part of the planet warming up the fastest (see “Tundra 4: Permafrost loss linked to Arctic sea ice loss“).  Countless studies make clear that global warming will release vast quantities of GHGs into the atmosphere this decade.  Yet, no climate model currently incorporates the amplifying feedback from methane released by a defrosting tundra.
Here’s more from the AFP story:
“In the next 25 to 30 years, the area of permafrost in Russia may shrink by 10-18%,” the head of the ministry’s disaster monitoring department Andrei Bolov told the RIA Novosti news agency.
“By the middle of the century, it can shrink by 15-30%, and the boundary of the permafrost may shift to the north-east by 150-200 kilometres,” he said.
The temperature of the zones of frozen soil in oil and gas-rich western Siberia territories will rise by up to 2 °C to just three or four degrees below zero, he predicted.
Permafrost, or soil that is permanently frozen, covers about 63% of Russia, but has been greatly affected by climate change in recent decades.
Here is  a good 2010 video on what is happening to the Russian tundra.
Back in the February, NOAA and the National Snow and Ice Data Center (NSIDC) dropped their own bombshell — Thawing permafrost feedback will turn Arctic from carbon sink to source in the 2020s, releasing 100 billion tons of carbon by 2100:
Figure:  Carbon emission (in billions of tons of carbon a year) from thawing permafrost.
The thaw and release of carbon currently frozen in permafrost will increase atmospheric CO2 concentrations and amplify surface warming to initiate a positive permafrost carbon feedback (PCF) on climate…. [Our] estimate may be low because it does not account for amplified surface warming due to the PCF itself….  We predict that the PCF will change the arctic from a carbon sink to a source after the mid-2020s and is strong enough to cancel 42-88% of the total global land sink. The thaw and decay of permafrost carbon is irreversible and accounting for the PCF will require larger reductions in fossil fuel emissions to reach a target atmospheric CO2 concentration.
The NSIDC/NOAA study itself doesn’t even incorporate the CO2 released by the permafrost carbon feedback into its warming model!  Even so, in their study, the permafrost is adding more than one billion tons of carbon a year to the atmosphere by the mid-2030s!
The authors note that of the dozen or so studies done to date on permafrost melt by 2100, “Our projections of permafrost degradation fall on the low side, but well within the range of other published projections.”  An earlier NCAR-led study found half the land-based permafrost would vanish by mid-century on our current emissions path (see “Tundra, Part 2: The point of no return“).
This conservative study “found that between 29-59% of the permafrost will disappear by 2200.”   Given that the head of the Russian ministry’s disaster monitoring department believes that 2 °C warming is enough to shrink up to 30% of the Russian permafrost by 2050 — and  given that northern Russia is looking at as much as 10 °C warming by century’s end (see here) — I’d  say we need to do a complete re-evaluation of the risk of losing most of the permafrost by century’s end, resulting in rates of carbon flux this century more than double what NSIDC/NOAA considered
Further, the NSIDC-led study acknowledges that it almost certainly underestimates the warming the PCF will cause.  It assumes all of the carbon released will come out as CO2, not methane.If  even half of the carbon comes out as methane, then the warming impact over  a 20-year time frame would be 10 times as much!
Finally, that study only looked at the land-based permafrost.  Let’s remember the study from last year:
Science: Vast East Siberian Arctic Shelf methane stores destabilizing and venting:  NSF issues world a wake-up call: “Release of even a fraction of the methane stored in the shelf could trigger abrupt climate warming.”Methane and carbon release from the Arctic is the most dangerous amplifying feedback in the entire carbon cycle. This research finds a key “lid” on “the large sub-sea permafrost carbon reservoir” near Eastern Siberia “is clearly perforated, and sedimentary CH4 [methane] is escaping to the atmosphere.”
Again, the “climate pragmatists” out there who think R&D or an energy quest is going to stop us from multiple catastrophes are deluding themselves and others.  We need to start aggressive mitigation now as every major independent study concludes.  And if we don’t, then those who follow the science at least have the moral obligation to warn the public about what is coming, so they can prepare, even if their political leaders refuse to do so (see “The GOP War Against Climate Adaptation“).