Showing posts with label global warming. Show all posts
Showing posts with label global warming. Show all posts

Friday, 8 March 2019

IN SWEDEN GREENHOUSE GASES WILL BE SCRUBBED FROM THE AIR

Hello All,

I found this interesting article in The Economist dated Nov 2017, and I thought it was worth to share this futurist yet, at time, impossible goal for the future.

The reading start affirming that "Cutting emissions will not be enough to keep global warming in check" and at this point I will be put off already....

This is a great discussion point on much has been done, could be done and that has not being done in regards to greenhouse gases emission

Enjoy the reading...



"SWEDEN’S parliament passed a law in June which obliges the country to have “no net emissions” of greenhouse gases into the atmosphere by 2045. The clue is in the wording. This does not mean that three decades from now Swedes must emit no planet-heating substances; even if all their electricity came from renewables and they only drove Teslas, they would presumably still want to fly in aeroplanes, or use cement and fertiliser, the making of which releases plenty of carbon dioxide. Indeed, the law only requires gross emissions to drop by 85% compared with 1990 levels. But it demands that remaining carbon sources are offset with new carbon sinks. In other words greenhouse gases will need to be extracted from the air.
Sweden’s pledge is among the world’s most ambitious. But if the global temperature is to have a good chance of not rising more than 2ºC above its pre-industrial level, as stipulated in the Paris climate agreement of 2015, worldwide emissions must similarly hit “net zero” no later than 2090. After that, emissions must go “net negative”, with more carbon removed from the stock than is emitted.

This is because what matters to the climate is the total amount of carbon dioxide in the atmosphere. To keep the temperature below a certain level means keeping within a certain “carbon budget”—allowing only so much to accumulate, and no more. Once you have spent that budget, you have to balance all new emissions with removals. If you overspend it, the fact that the world takes time to warm up means you have a brief opportunity to put things right by taking out more than you are putting in (see chart 1).

Being able to remove carbon dioxide from the atmosphere is, therefore, a crucial element in meeting climate targets. Of the 116 models the Intergovernmental Panel on Climate Change (IPCC) looks at to chart the economically optimal paths to the Paris goal, 101 assume “negative emissions”. No scenarios are at all likely to keep warming under 1.5ºC without greenhouse-gas removal. “It is built into the assumptions of the Paris agreement,” says Gideon Henderson of Oxford University.

Climate scientists like Mr Henderson have been discussing negative-emissions technologies (NETs) with economists and policy wonks since the 1990s. Their debate has turned livelier since the Paris agreement, the phrasing of which strongly suggests that countries will need to invent new sinks as well as cutting emissions. But so far politicians have largely ignored the issue, preferring to focus on curbing current flows of greenhouse gases into the atmosphere. NETs were conspicuous by their absence from the agenda of the annual UN climate jamboree which ended in Bonn on November 17th.
In the short term this makes sense. The marginal cost of reducing emissions is currently far lower than the marginal cost of taking carbon dioxide straight from the atmosphere. But climate is not a short-term game. And in the long term, ignoring the need for negative emissions is complacent at best. The eventual undertaking, after all, will be gargantuan. The median IPCC model assumes sucking up a total of 810bn tonnes of carbon dioxide by 2100, equivalent to roughly 20 years of global emissions at the current rate. To have any hope of doing so, preparations for large-scale extraction ought to begin in the 2020s.
Modellers favour NETs that use plants because they are a tried and true technology. Reforesting logged areas or “afforesting” previously treeless ones presents no great technical challenges. More controversially, they also tend to invoke “bioenergy with carbon capture and storage” (BECCS). In BECCS, power stations fuelled by crops that can be burned to make energy have their carbon-dioxide emissions injected into deep geological strata, rather than released into the atmosphere.
The technology for doing the CCS part of BECCS has been around for a while; some scenarios for future energy generation rely heavily on it. But so far there are only 17 CCS programmes big enough to dispose of around 1m tonnes of carbon dioxide a year. Promoting CCS is an uphill struggle, mainly because it doubles the cost of energy from the dirty power plants whose flues it scrubs. Other forms of low-emission electricity are much cheaper. Affixed to bioenergy generation, though, CCS does something that other forms of generation cannot. The carbon which the plants that serve as fuel originally took from the atmosphere above is sent into the rocks below, making it a negative emitter.
The problem with afforestation and BECCS is that the plants involved need a huge amount of land. The area estimated ranges from 3.2m square kilometres (roughly the size of India) to as much as 9.7m square kilometres (roughly the size of Canada). That is the equivalent of between 23% and 68% of the world’s arable land. It may be that future agricultural yields can be increased so dramatically that, even in a world with at least 2bn more mouths to feed, the area of its farms could be halved, and that the farmers involved might be happy with this turn of events. But it seems highly unlikely—and blithely assuming it can be done is plainly reckless.

Negative thinking
Less land-intensive alternatives exist—at least on paper. Some are low tech, like stimulating the soil to store more carbon by limiting or halting deep-ploughing. Others are less so, such as contraptions to seize carbon dioxide directly from the air, or methods that accelerate the natural weathering processes by which minerals in the Earth’s crust bind atmospheric carbon over aeons or that introduce alkaline compounds into the sea to make it absorb more carbon dioxide.
According to Jennifer Wilcox of the Colorado School of Mines, and her colleagues, the technology with the second-highest theoretical potential, after BECCS, is direct air capture (see chart 2). This uses CCS-like technology on the open air, rather than on exhaust gases. The problem is that the concentration of carbon dioxide in the air, while very high by historical standards, is very low by chemical-engineering ones: just 0.04%, as opposed to the 10% or more offered by power-plant chimneys and industrial processes such as cement-making.

The technologies that exist today, under 
development by companies such as Global Thermostat in America, Carbon Engineering in Canada or Climeworks of Switzerland, remain pricey. In 2011 a review by the American Physical Society to which Ms Wilcox contributed put extraction costs above $600 per tonne, compared with an average estimate of $60-250 for BECCS.

Enhanced weathering is at an even earlier stage of development and costs are still harder to assess. Estimates range from $25 per tonne of carbon dioxide to $600. On average, 2-4 tonnes of silicate minerals (olivine, sometimes used in Finnish saunas because it withstands repeated heating and cooling, is a favourite) are needed for every tonne removed. To extract 5bn tonnes of carbon dioxide a year may require up to 20bn tonnes of minerals that must be ground into fine dust. Grinding is energy-intensive. Distributing the powder evenly, on land or sea, would be a logistical challenge to put it mildly.
Ideas abound on a small scale, in labs or in researchers’ heads, but the bigger mechanical schemes in existence today capture a paltry 40m tonnes of carbon dioxide a year. Most involve CCS and have prevented more carbon dioxide escaping into the atmosphere from fossil-burning power plants, rather than removing it. Removing 8bn-10bn tonnes by 2050, as the more sanguine scenarios envisage, let alone the 35bn-40bn tonnes in more pessimistic ones, will be a vast undertaking.
Progress will be needed on many fronts. All the more reason to test lots of technologies. For the time being even researchers with a horse in the race are unwilling to bet on a winner. Pete Smith of Aberdeen University speaks for many NETs experts when he says that “none is a silver bullet, and none has a fatal flaw.”
It will also not come cheap. WITCH, constructed by Massimo Tavoni of Politecnico di Milano, is a model which analyses climate scenarios. Unlike most simulations, it also estimates how much research-and-development funding is necessary to achieve roll-out at the sort of scale these models forecast. For all low-carbon technologies, it puts the figure at $65bn a year until 2050, four times the sum that renewables, batteries and the like attract today. Mr Tavoni says a chunk of that would obviously need to go to NETs, which currently get next to nothing.
Even the less speculative technologies need investment right away. Trees take decades to reach their carbon-sucking potential, so large-scale planting needs to start soon, notes Tim Searchinger of Princeton University. Direct air capture in particular looks expensive. Boosters note that a few years ago so did renewables. Before technological progress brought prices down, many countries subsidised renewable-energy sources to the tune of $500 per tonne of carbon dioxide avoided and often spent huge sums on it. Christoph Gebald, co-founder of Climeworks, says that “the first data point on our technological learning curve” is $600, at the lower end of previous estimates. But like the price of solar panels, he expects his costs to drop in the coming years, perhaps to as low as $100 per tonne.
However, the falling price of solar panels was a result of surging production volumes, which NETs will struggle to replicate. As Oliver Geden of the German Institute of International and Security Affairs observes, “You cannot tell the green-growth story with negative emissions.” A market exists for rooftop solar panels and electric vehicles; one for removing an invisible gas from the air to avert disaster decades from now does not.
Much of the gas captured by Climeworks and other pure NETs firms (as opposed to fossil-fuel CCS) is sold to makers of fizzy drinks or greenhouses to help plants grow. It is hard to imagine that market growing far beyond today’s total of 10m tonnes. And in neither case is the gas stored indefinitely. It is either burped out by consumers of carbonated drinks or otherwise exuded by eaters of greenhouse-grown produce.


There may be other markets, though. It is very hard to imagine aircraft operating without liquid fuels. One way to provide them would be to create them chemically using carbon dioxide taken from the atmosphere. It is conceivable that this might be cheaper than alternatives, such as biofuels—especially if the full environmental impact of the biofuels is accounted for. The demand for direct air capture spurred by such a market might drive its costs low enough to make it a more plausible NET.

From thin air
One way to create a market for NETs would be for governments to put a price on carbon. Where they have done so, the technologies have been adopted. Take Norway, which in 1991 told oil firms drilling in the North Sea to capture carbon dioxide from their operations or pay up. This cost is now around $50 per tonne emitted; in one field, called Sleipner, the firms have found ways to pump it back underground for less than that. A broader carbon price—either a tax or tradable emissions permits—would promote negative emissions elsewhere, too.
Then there is the issue of who should foot the bill. Many high-impact negative-emissions schemes make most sense in low-emitting countries, says Ms Wilcox. Brazil could in theory reforest the cerrado (though that would face resistance because of the region’s role in growing soyabeans and beef). Countries of sub-Saharan Africa could do the same in their own tropical savannahs. Spreading olivine in the Amazon and Congo river basins could soak up 2bn tonnes of carbon dioxide.
Developing countries would be understandably loth to bankroll any of this to tackle cumulative emissions, most of which come from the rich world. The latter would doubtless recoil at footing the bill, preferring to concentrate on curbing current emissions in the mistaken belief that once these reach zero, the job is done.
Whether NETs deserve to be lumped in with more outlandish “geoengineering” proposals, such as cooling the Earth with sunlight-reflecting sulphur particles in the stratosphere, is much debated. What they have in common is that they offer ways to deal with the effects of emissions that have already taken place. Proponents of small-scale, low-impact NETs, such as changes to soil management on farms, though, bridle at being considered alongside what they see as high-tech hubris of the most disturbing kind. NETs certainly inspire fewer fears of catastrophic, planetary-scale side-effects than “solar radiation management”.
But they do stoke some when it comes to the consequences of tinkering with the ocean’s alkalinity or injecting large amounts of gas underground. And the direct effects of large-scale BECCS or afforestation projects would be huge. If they don’t take up arable land, they need to take up pasture or wilderness. Either option would be a big deal in terms of both human amenity and biodiversity.
Another concern is the impact on politicians and the dangers of moral hazard. NETs allow politicians to go easy on emission cuts now in the hope that a quick fix will appear in the future. This could prove costly if the technology works—and costlier still if it does not. One study found that following a 2°C mitigation path which takes for granted NETs that fail to materialise would leave the world closer to 3°C warmer. Mr Geden is not alone in fearing that models that increasingly rely on NETs are “a cover for political inaction”.

Everything and the carbon sink
There is some progress. Academics are paying more attention. This year’s edition of “Emissions Gap”, an influential annual report from the UN Environment Programme, devotes a chapter to carbon-dioxide removal. Mr Henderson is leading a study of the subject for Britain’s Royal Society; America’s National Academy of Sciences has commissioned one, too. Both are due next spring. The IPCC will look at the technology in its special report on the 1.5ºC target, due next autumn.
There’s some money, too. Carbon Engineering has attracted backers such as Bill Gates, and now has a pilot plant in Canada. Climeworks has actually sold some carbon-offset credits—to a private investor and a big corporation—on the basis of the carbon dioxide it has squirrelled away at a demonstration plant it recently launched in Iceland. Earlier this year Britain’s government became the first to set aside some cash specifically for NETs research. In October America’s Department of Energy announced a series of grants for “novel and enabling” carbon-capture technologies, some of which could help in the development of schemes for direct air capture. Richard Branson, a British tycoon, has offered $25m to whoever first comes up with a “commercially viable design” that would remove 1bn tonnes of greenhouse gases a year for ten years.
All this is welcome, but not enough. The sums involved are trifling: £8.6m ($11.3m) in Britain and $26m from the Department of Energy. The offset sold by Climeworks was for just 100 tonnes. Mr Branson’s prize has gone unclaimed for a decade.
A carbon price—which is a good idea for other reasons, too, would beef up interest in NETs. But one high enough to encourage pricey moonshots may prove too onerous for the rest of the economy. Any price would promote more established low-carbon technologies first and NETs only much later, thinks Glen Peters of the Centre for International Climate Research in Oslo.
Encouraging CCS for fossil fuels as a stepping stone to NETs appeals to some. The fossil-fuel industry says it is committed to the technology. Total, a French oil giant, has promised to spend a tenth of its $600m research budget on CCS and related technologies. A group of oil majors says it will spend up to $500m on similar projects between now and 2027. But the field’s slow progress to date hardly encourages optimism. Governments’ commitment to CCS has historically proved fickle.
Last year Britain abruptly scrapped a £1bn public grant for an industrial-scale CCS plant which would have helped fine-tune the technology. For this to change, politicians must expand the focus of the 23-year-old UN Framework Convention on Climate Change from cutting emissions of greenhouse gases to controlling their airborne concentrations, suggests Janos Pasztor, a former climate adviser to the UN secretary-general. In other words, they must think about stocks of carbon dioxide, not just flows.
This is all the more true because emissions continue to elude control. After three years of more or less stable emissions, a zippier world economy looks on track to belch 2% more carbon dioxide this year. That amounts once again to borrowing more of the planet’s remaining carbon budget against future removal. It doesn’t take a numerate modeller like Mr Tavoni to grasp that, in his words, “If you create a debt, you must repay it.” The price of default does not bear thinking about."



The full article can be found in the below link:
https://www.economist.com/briefing/2017/11/16/greenhouse-gases-must-be-scrubbed-from-the-air

Sunday, 3 February 2019

#10 YEARS CHALLENGE

Hello All,

at the beginning of this year we have all been attempted to this #10yearchallenge and for one minute I was it too but then those images caught my attention and I found them much more inspiring.

Good reflection on where we are going ... sadly !! 




x






















Saturday, 22 December 2018

FLOODS

HI ALL,

Lately  I can see we talk more and more about flooding, storms and disasters happening due to the strong and unpredictable weather conditions as never before. 
The images that follow have been taken from the news of the last few months, in fact floods have been reported all over the world:

Italy: Treviso, Venice, Rome - October 2018
Spain: Malaga, Mayorca - October 2018
France - August 2018
US: Washington, Arizona - July 2018
South East Asia: Bangladesh ,India Myanmar - June 2018


Could they be linked to global warning, tree cutting and the conquer over the natural environment?

... have a thought!! 





































Further information can be found at:

https://eu.usatoday.com/story/news/nation/2018/07/24/heavy-rainfall-causes-severe-northeast-flooding/825060002/
http://www.ansa.it/sito/notizie/cronaca/2018/10/30/maltempo-piave-verso-esondazione_a789689b-fb4d-40b0-bdf9-0d2f0d2dacb9.html
https://www.theguardian.com/weather/2018/oct/30/water-rises-to-three-feet-in-st-marks-basilica-after-venice-floods
https://watchers.news/2018/10/22/malaga-flood-spain-october-2018/
https://www.bbc.co.uk/news/world-europe-45134715
https://majorcadailybulletin.com/news/local/2018/10/10/53397/six-confirmed-dead-after-devastating-flash-floods.html
https://www.bbc.co.uk/weather/features/44540598

Thursday, 6 September 2018

KENYAN INNOVATION TAKES PLASTIC BAGS OUT OF FORESTRY


Hello All,

please find here below an article I recently found in a BBC link which was talking about plastic pollution and reforestation.
Kenya already banned the use of plastic bags in 2017, what are we waiting for?

Great highlights and new points of view form Kenya, enjoy the reading!!





"KENYAN INNOVATION TAKES PLASTIC BAGS OUT OF FORESTRY

Plastic bags are known for their environmental impact. They slowly release toxic chemicals once in the soil, for instance, and find their way into the guts of animals that often choke and die as a result.

Kenya banned the use of plastic bags in 2017. And thanks to a 43-year old Kenyan, Teddy Kinyanjui, an innovative afforestation and reforestation method for developing seedlings without using plastic bags is in place.



A resident of Nairobi and founder of Cookswell Jikos Limited, Kinyanjui has invented small, portable seed balls to grow and easily disperse seedlings. He is working in partnership with Kenya Forestry Research Institute (KEFRI), which certifies seeds.This photo gallery shows Kinyanjui’s ingenuity in using the seed balls instead of the usual plastic bags.

When tree seedlings are grown in plastic bags in a nursery, he explains, the roots get squeezed and this limits their ability to grow fast. The seed ball method enables roots to adapt easily, with less disturbance.
Kinyanjui says he has engineered a method of coating each seed with charcoal dust, and corn or cassava starch, to bind each ball so the seeds are protected from prey, pests and diseases.


He says he has the capacity to make one tonne of the seed balls per day. So far, since the project’s initiation in 2016, about one million seeds of different species of certified indigenous trees have been dispersed throughout Kenya through partnerships with locals and with a germination rate of 60 per cent.
“People use charcoal every day, necessitating for more trees. Climate change has also caused community conflicts, especially among pastoralists in Northern Kenya who fight over pasture for their animals,” says Kinyajui. “Good environmental management is, therefore, crucial for peace among these communities.”

He hopes to partner with like-minded organisations and youth who herd livestock with slings to disperse more seeds in arid lands.

“We would [also] like people to see the value of this simple technology
 as a contributing factor in combating and adapting to effects of climate change, as this is the cheapest way to encourage tree planting, especially in arid and semi-arid areas,” adds Kinyanjui."



Full article can be found:
https://www.scidev.net/global/environment/multimedia/kenyan-innovation-takes-plastic-bags-out-of-forestry.html

Friday, 3 August 2018

THE LONG HOT SUMMER

Hello All,I would like to report another article from "The Economist" which hightlight the consequence that this constant increasing heath of the globe is causing to many countries, not only to the natural environment but also economically and financially.Enjoy the reading and let me know what you think!!"Heat is causing problems across the worldWorryingly, such weather events may not remain unusual

SODANKYLA, a town in Finnish Lapland just north of the Arctic Circle, boasts an average annual temperature a little below freezing. Residents eagerly await the brief spell in July when the region enjoys something akin to summer. This year they may have wished for a bit less of it. On July 18th thermometers showed 32.1°C (89.8°F), which is 12°C warmer than typical for the month and the highest since records began in 1908. But Sodankyla is not the only place that is sizzling.
Wildfires have killed at least 80 people near Athens. Sweden has suffered a rash of forest fires, sparked by unusually hot and dry weather. Britain and the Netherlands look more parched than they did in 1976, one of the driest summers on record. Some 80,000 hectares of forest are burning in Siberia. Japan has declared its heatwave to be a natural disaster. On the night of July 7th, the temperature in downtown Los Angeles did not drop below 26.1°C. That seems positively nippy compared with Quriyat in Oman, which recorded a 24-hour minimum temperature of 42.6°C a few days earlier.
Heatwaves bring problems, especially in the developing world. Crops are ravaged, food spoils and workers become less productive. Studies have linked rising temperatures to violent crime and civil strife. And heat can kill on its own. In 2003 more than 70,000 Europeans may have died as a direct result of an infernal summer.
That was seen as a once-a-millennium heatwave at the time. By comparison, notes Geert Jan van Oldenborgh of the Royal Netherlands Meteorological Institute, outside of northern Europe the summer of 2018 looks unremarkable, so far, in terms of temperature. The Netherlands, for instance, can expect scorchers every couple of years. Except, he adds, a century ago that might have been once every 20 years. A few years back, a team led by Peter Stott of Britain’s Met Office calculated that, by 2012, summers like the one in 2003 would be expected to occur not every 1,000 years but every 127.
Hot times ahead
No consequence of global warming is as self-evident as higher temperatures. Earth is roughly 1°C hotter today than it was before humanity started belching greenhouse gases into the atmosphere during the Industrial Revolution. If this so-called thermodynamic effect were all there was to it, temperatures now considered unusually hot would become more typical and those regarded as uncommonly cold, uncommoner still. But climate being a complicated thing, there is more to it.
Weather patterns can change because the colder poles warm faster than balmier lower latitudes. As the thermal difference between the two diminishes, so does the velocity of the jet stream, a westerly wind which blows at an altitude of around 10km. That means the weather it carries can stay in place for longer. Sometimes, it offsets the thermodynamic effects, leading to cooler temperatures than might be expected. Often, it amplifies them.
When and by how much is a matter of hot debate among climate scientists. It is hard to pin any particular heatwave, drought or flood on the effects of man-made pollution. Freak events happen; the highest temperature ever recorded on Earth was 56.7°C in Death Valley, California, but that was on July 10th 1913, when concentrations of carbon dioxide in the atmosphere were much lower.
By using clever statistics to compare the climate’s actual behaviour with computer simulations of how it might have behaved in the absence of human activity, researchers can calculate how mankind has made a particular weather event more likely. The first such study, co-authored by Dr Stott in 2004, found that the likelihood of the 2003 European summer had doubled as a result of human activity. Since then similar “event attribution” research has burgeoned. A year ago Carbon Brief, a web portal, identified a total of 138 peer-reviewed papers in the field, covering 144 weather events. Of 48 heatwaves, 41 contained humankind’s imprint in the data.
More studies have appeared since then. World Weather Attribution, a website run by Dr van Oldenborgh and Friederike Otto of Oxford University, posts a new one practically every month. Besides scrutinising past weather, many of the studies look ahead—in particular at how the likelihood of future extreme events changes depending on how seriously countries take their commitment in Paris in 2015 to limit global warming to “well below” 2°C relative to pre-industrial levels (and better yet, to no more than 1.5°C).
The picture that emerges is bleak. One study, published in June by Andrew King of the University of Melbourne and his colleagues, found that the number of Europeans who can expect to witness a temperature above the current record, wherever they happen to live, would double from 45m today to 90m if the planet warmed by another 0.5°C or so on top of the 1°C since the 1880s. If, instead of 0.5°C, it warmed by 1°C, the figure would rise to 163m.
This looks even more alarming if you factor in humidity. Human beings can tolerate heat with sweat, which evaporates and cools the skin. That is why a dry 50°C can feel less stifling than a muggy 30°C. If the wet-bulb temperature (equivalent to that recorded by a thermometer wrapped in a moist towel) exceeds 35°C, even a fit, healthy youngster lounging naked in the shade next to a fan could die in six hours.
At present, wet-bulb temperatures seldom exceed 31°C. In 2016 Jeremy Pal of Loyola Marymount University and Elfatih Eltahir of the Massachusetts Institute for Technology found that if carbon emissions continue unabated, several cities in the Persian Gulf, including Abu Dhabi and Dubai, could exceed wet-bulb levels of 35°C by the end of the century. A follow-up study reckoned that, by 2100, parts of South Asia, which is much more populous than the sheikhdoms and a lot poorer, could suffer a wet-bulb level of 34.2°C every 25 years.
The effects could be devastating. The World Bank has warned that rising temperatures and changing monsoons could cost India 2.8% of GDP per person by 2050 and affect the living standards of 600m Indians in areas identified as hot spots. The global cost of productivity lost to heat has been estimated at $2trn by 2030.
The toll on human lives is hard to imagine. But at least people can learn from past mistakes. Thanks to better government responses, particularly in care for the elderly, in 2012 Europe survived a summer hotter still than 2003 with fewer casualties. As Indians get richer more will be able to afford air-conditioning; even those in shantytowns can paint their corrugated-iron roofs white to reflect sunlight. If only the world could take in a similar lesson about the importance of stopping climate change in the first place."

Wednesday, 6 June 2018

TOO HOT TO HANDLE - CLIMATE CHANGE IS MAKING THE ARAB WORLD MORE MISERABLE from The Economist

Hello All,

I am reporting an article I read in these days in 'The Economist' interesting but never the less alarming.It concerns me how the majority of people are still underestimating the problem of the global warming and not doing enough to divert this trend.
Full article can be found @: https://www.economist.com/middle-east-and-africa/2018/06/02/climate-change-is-making-the-arab-world-more-miserable
TOO HOT TO HANDLECLIMATE CHANGE IS MAKING THE ARAB WORLD MORE MISERABLE

"SIX years ago Nabil Musa, a Kurdish environmentalist, returned from over a decade abroad to find Iraq transformed. Rivers in which he had swum year-round turned to dust in summer. Skies once crowded with storks and herons were empty. Drought had pushed farmers to abandon their crops, and dust storms, once rare, choked the air. Inspired to act, he joined a local conservationist group, Nature Iraq, to lobby for greener practices. But Kurdish officials pay little attention. “One of the last things we want to think about is climate change,” says Mr Musa.
Apathy towards climate change is common across the Middle East and north Africa, even as the problems associated with it get worse. Longer droughts, hotter heatwaves and more frequent dust storms will occur from Rabat to Tehran, according to Germany’s Max Planck Institute for Chemistry. Already-long dry seasons are growing longer and drier, withering crops. Heat spikes are a growing problem too, with countries regularly notching lethal summer temperatures. Stretch such trends out a few years and they seem frightening—a few decades and they seem apocalyptic.
The institute forecasts that summer temperatures in the Middle East and north Africa will rise over twice as fast as the global average. Extreme temperatures of 46°C (115°F) or more will be about five times more likely by 2050 than they were at the beginning of the century, when similar peaks were reached, on average, 16 days per year. By 2100 “wet-bulb temperatures”—a measure of humidity and heat—could rise so high in the Gulf as to make it all but uninhabitable, according to a study in Nature(though its most catastrophic predictions are based on the assumption that emissions are not abated). Last year Iran came close to breaking the highest reliably recorded temperature of 54°C, which Kuwait reached the year before.

Dry and discontented
Water presents another problem. The Middle East and north Africa have little of it to begin with, and rainfall is expected to decline because of climate change. In some areas, such as the Moroccan highlands, it could drop by up to 40%. (Climate change might bring extra rain to coastal countries, such as Yemen, but that will probably be offset by higher evaporation.) Farmers struggling to nourish thirsty crops are digging more wells, draining centuries-old aquifers. A study using NASA satellites found that the Tigris and Euphrates basins lost 144 cubic kilometres (about the volume of the Dead Sea) of fresh water from 2003 to 2010. Most of this reduction was caused by the pumping of groundwater to make up for reduced rainfall.
Climate change is making the region even more volatile politically. When eastern Syria was ravaged by drought from 2007 to 2010, 1.5m people fled to cities, where many struggled. In Iran, a cycle of extreme droughts since the 1990s caused thousands of frustrated farmers to abandon the countryside. Exactly how much these events fuelled the war that broke out in Syria in 2011 and recent unrest in Iran is a topic of considerable debate. They have certainly added to the grievances that many in both countries feel.
The mere prospect of shortages can lead to conflicts, as states race to secure water supplies at the expense of downstream neighbours. When Ethiopia started building an enormous dam on the Nile, potentially limiting the flow, Egypt, which relies on the river for nearly all of its water, threatened war. Turkish and Iranian dams along the Tigris, Euphrates and other rivers have raised similar ire in Iraq, which is beset by droughts.
Scientists have laid out steps that Arab countries could take to adapt to climate change. Agricultural production could be shifted to heat-resilient crops. Israel uses drip irrigation, which saves water and could be copied. Cities could be modified to reduce the “urban heat-island effect”, by which heat from buildings and cars makes cities warmer than nearby rural areas. Few of these efforts have been tried by Arab governments, which are often preoccupied with other problems. Mr Musa says the Kurdish officials he lobbies have been distracted by a war with Islamic State, a failed referendum on independence and, now, repairing relations with Iraq’s central government in Baghdad.
Politics often gets in the way of problem-solving. Countries are rarely able to agree on how to share rivers and aquifers. In Gaza, where the seepage of saltwater and sewage into an overused aquifer raises the risk of disease, a blockade by Israel and Egypt has made it harder to build and run desalination plants. In Lebanon there is little hope that the government, divided along sectarian lines, will do anything to forestall the decline in the water supply predicted by the environment ministry. Countries such as Iraq and Syria, where war has devastated infrastructure, will struggle to prepare for a hotter, drier future.
Some countries are, at least, trying to curb emissions. Morocco is building a colossal solar-power plant in the desert, as is Dubai, part of United Arab Emirates (UAE). Saudi Arabia is not going to stop exporting oil, but it plans to build a solar plant that will be about 200 times the size of the biggest such facility operating today. Like other sun-drenched countries in the region, it sees solar power as a cost-effective way to increase the electricity supply and cut energy subsidies. “When I first started, people looked at environmentalists as tree-huggers,” says Safa al-Jayoussi of IndyACT, a conservationist group in Beirut. “But now I think the most important argument is the economic one.”
States in the Middle East and north Africa can do little on their own to mitigate climate change. Inevitably, though, they will need to adapt. So far depressingly little has been done. “Sometimes I feel like I’m on a treadmill,” says Mr Musa."