Showing posts with label sulphur dioxide. Show all posts
Showing posts with label sulphur dioxide. Show all posts

Monday, September 14, 2026

The Earth is heating up faster

 From the BBC



The fossil fuels that we've been burning for more than a century produce two very different kinds of pollution. As is well known, carbon dioxide warms the Earth. But less well-known is sulphur pollution, which forms vast numbers of tiny particles in the air and reflects sunlight back into space, partly counteracting the warming effect of carbon.

Thanks to clean-air policies around the world - like the US's Acid Rain Program in the early 1990s, that reduced gas pollution from power plants - sulphur emissions are falling sharply while carbon dioxide emissions remain near record highs. 

Scientists increasingly believe the loss of that cooling effect is slightly  [more than slightly — increasing it by 50%!speeding up global warming. 

The past three years were the three warmest ever recorded, and the Met Office says 2027 is "very likely" to replace 2024 as the warmest year on record.

Is it possible that our planet is actually more sensitive to greenhouse gases than we imagined?

And if so, might the climate be changing more rapidly than we feared? 

Global temperatures jump around naturally from year to year. El Niño, for example, a natural warming of the Pacific Ocean, can temporarily push them higher. So a run of record hot years does not necessarily mean the underlying rate of global warming has increased.

Reto Knutti and his team at ETH Zurich have tried to strip out the effects of El Niño and other natural fluctuations to reveal the underlying trend. 

"It's pretty clear that the rate of warming has accelerated," says Knutti, a professor of climate physics at the Swiss university and a former co-ordinating lead author for the IPCC - the UN-backed body that produces the world's most authoritative assessments of climate science. 

A separate study published this year reached a similar conclusion after accounting for several major natural influences. 

And it seems aerosols are playing a role. 

Burning coal and oil releases sulphur dioxide, which forms tiny particles known as sulphate aerosols. These particles are bright and reflect some sunlight before it can reach and warm the planet's surface.

Pollution from ships can create bright trails through clouds, visible from space
Source:NASA


You've probably heard the greenhouse analogy used to explain global warming. Gases like carbon dioxide make it harder for heat to escape from the Earth, rather like the glass windows of a greenhouse.


Well, sulphur pollution acts a bit like dust on the greenhouse windows. The more dust that gathers on those windows, the less sunlight gets inside, and the slower the greenhouse heats up in the first place.


Dr Øivind Hodnebrog, a principal researcher at Cicero, the Norwegian climate research institute, has studied how falling aerosol pollution affects the climate. "Sulphate aerosols, they are really small particles, but they are bright particles," he says.


As well as reflecting sunlight, aerosols also cool the planet by changing the formation of clouds. Aerosols act like tiny seeds around which water vapour can condense, making some clouds brighter or longer-lived. Pollution from ships can even create bright trails through marine clouds visible from space. So more aerosols mean brighter clouds and more reflection, and so less warming.

But sulphur pollution also damages human health (it can get into our lungs and make it harder to breathe), and causes acid rain, which can destroy forests and kill fish - and so countries have spent decades cutting it. Emissions have fallen sharply in Europe, North America and China, while new rules have also reduced sulphur pollution from shipping.

In our greenhouse analogy, it's as if we've wiped some of the dust away from the windows of the greenhouse, allowing in more sunlight.


And while carbon dioxide remains in the climate system for centuries, sulphate aerosols survive in the atmosphere for just days or weeks. So when sulphur emissions fall, their cooling effect disappears almost immediately.


The effect is strongest where sulphur pollution has fallen fastest. One study estimates it has added around half a degree to summer warming in western-central Europe since 1980.


Prof Piers Forster, a climate scientist at the University of Leeds and another senior author of the IPCC's most recent assessment, estimates that declining aerosol pollution may now be adding around 0.05C to 0.1C of warming per decade [to the existing 0.2C per decade].


But aerosols can only explain part of the recent acceleration in warming. Greenhouse gases remain much more important.


Forster estimates they are currently adding around 0.2C of warming globally per decade. "It is a very significant contribution," he says of the aerosol effect, "but it is not as important as the greenhouse gas contribution by quite a long way."


"The aerosols have masked some of the greenhouse gas warming from earlier," is how Hodnebrog explains it.

"Masked" - that's an interesting word he uses. What he means is cleaner air is not causing the underlying warming; it is removing some of the cooling that had been holding that warming back.


So if cleaner air is only responsible for part of the recent acceleration in global warming, what else is at work?


To see what else might be going on, scientists zoom out and look at the Earth as a whole: how much energy it absorbs from the Sun, and how much heat it loses back into space. Scientists call the difference Earth's energy imbalance.


Cleaner air is part of that picture. Fewer sulphate particles mean less sunlight is reflected away - in our greenhouse analogy, the windows are cleaner.


For a long time, the Earth has been absorbing more energy than it loses. That surplus is what warms the planet. And Knutti says that imbalance has roughly tripled over the past two decades - although the precise increase depends on which years are compared.


Greenhouse gases principally work by making it harder for heat to escape out into space. That's what we're all familiar with. But when you look at Earth's energy imbalance, you find that there's also more sunlight getting in (and therefore more heat that can be absorbed).

So what else might be letting more sunlight in?


Much of that change appears to involve something we have already encountered in this story: clouds. We saw how sulphur pollution can make some clouds brighter and longer-lived, reflecting more sunlight away. But global warming itself can also change clouds. As some parts of the ocean warm, low cloud cover can diminish. That matters because clouds are bright, while the ocean beneath them is dark. Remove some cloud and more sunlight reaches the sea, where much of it is absorbed as heat.


That can create a feedback: warming reduces some cloud cover, which allows more sunlight in, which produces still more warming.


And the oceans are certainly heating up. The World Meteorological Organization says the oceans have warmed more than twice as fast over the past two decades than they did between 1960 and 2005.


Dr Paulo Ceppi, a climate physicist at Imperial College London, says his research suggests this feedback loop between climate change and clouds is more important than sulphur pollution in explaining the recent decline in low clouds.

But there's still lots of uncertainty. Scientists say the impacts of cleaner air, natural variations and the effects of warming itself are all tangled together. And, when I asked Knutti how much of the cloud change came from each, his answer was simple: "We don't know."


And this is where the story takes an even more worrying turn.


That uncertainty matters because clouds are one of the hardest things to represent in the computer simulations scientists use to project future warming. Some models show more warming than others for the same amount of greenhouse gas emissions.


Scientists call this variability "climate sensitivity": how much the climate responds to gases like carbon dioxide.


And the recent observations give Knutti and his colleagues a new way to test those models. They found that models which best predicted the recent warming, as well as the rise in the Earth's energy imbalance, are also the ones with a more sensitive climate.


In other words, the models that predict more warming are looking like the most accurate.  His team's analysis suggests that the same emissions could produce about 25% more warming than we previously thought.

And a study published in the journal Science last year points in a similar direction. Models which projected relatively little warming struggled most to reproduce the observed rise in Earth's energy imbalance.


Under policies governments currently have in place, the world is estimated to be heading for around 2.8C of warming by the end of the century. Forster says that if this new evidence proves correct, the same broad emissions path could instead produce warming closer to 3.5C. 

It sounds serious - but there are important reasons for caution. [For climate scientists, yes.  For governments and the general population, no.  Because prudence suggests we assume the worst.  If that is wrong, we've reduced emissions faster than we were going to do anyway.  If it's right, we instead face climate and civilisational catastrophe.]  


Warming appears to have accelerated, but Forster says that does not mean it will keep doing so.


He points out that the recent observations that underpin these estimates cover a relatively short period.


"We have to be very cautious of how we go about interpreting observations that last for one or two decades," he says.


The satellite record is short, natural variations are large, and these new studies do not overturn previous estimates.


But still, some scientists are alarmed.

So - is cleaning up the air making global warming worse?


In one narrow sense, yes. Removing sulphate pollution takes away some of the cooling that had been counteracting greenhouse warming. That really has contributed to the recent acceleration. But cleaner air has not caused climate change.


The aerosol story may help explain part of that acceleration. But the wider evidence raises a more worrying possibility: that the climate responds more strongly to greenhouse gases than central estimates have assumed.


If that's correct, the same emissions could produce more warming than we expected. Climate risks increase with every fraction of a degree of warming, with the potential for more severe heatwaves, floods, droughts, and wildfires as temperatures rise.


Some of the science we have explored here is complex and important questions remain unresolved. But on the central point, the science is clear: the more greenhouse gases we emit, the warmer the planet will become.


And, if the climate really is more sensitive than previously thought, cutting emissions quickly becomes even more important.


See also: 

Significant acceleration of global heating since 2015

 

Monday, August 19, 2024

Climate models can't explain 2023's huge heat anomaly

Source: NOAA
Note: this is relative to 1901-2000 average
Relative to the 1850-1900 average, the anomaly is already over 1.5 degrees C


From Nature, by Gavin Schmidt

When I took over as the director of NASA’s Goddard Institute for Space Studies, I inherited a project that tracks temperature changes since 1880. Using this trove of data, I’ve made climate predictions at the start of every year since 2016. It’s humbling, and a bit worrying, to admit that no year has confounded climate scientists’ predictive capabilities more than 2023 has.

For the past nine months, mean land and sea surface temperatures have overshot previous records each month by up to 0.2 °C — a huge margin at the planetary scale. A general warming trend is expected because of rising greenhouse-gas emissions, but this sudden heat spike greatly exceeds predictions made by statistical climate models that rely on past observations. Many reasons for this discrepancy have been proposed but, as yet, no combination of them has been able to reconcile our theories with what has happened.

For a start, prevalent global climate conditions one year ago would have suggested that a spell of record-setting warmth was unlikely. Early last year, the tropical Pacific Ocean was coming out of a three-year period of La Niña, a climate phenomenon associated with the relative cooling of the central and eastern Pacific Ocean. Drawing on precedents when similar conditions prevailed at the beginning of a year, several climate scientists, including me, put the odds of 2023 turning out to be a record warm year at just one in five.

El Niño — the inverse of La Niña — causes the eastern tropical Pacific Ocean to warm up. This weather pattern set in only in the second half of the year, and the current spell is milder than similar events in 1997–98 and 2015–16.

However, starting last March, sea surface temperatures in the North Atlantic Ocean began to shoot up. By June, the extent of sea ice around Antarctica was by far the lowest on record. Compared with the average ice cover between 1981 and 2010, a patch of sea ice roughly the size of Alaska was missing. The observed temperature anomaly has not only been much larger than expected, but also started showing up several months before the onset of El Niño.

So, what might have caused this heat spike? Atmospheric greenhouse-gas levels have continued to rise, but the extra load since 2022 can account for further warming of only about 0.02 °C. Other theories put forward by climate scientists include fallout from the January 2022 Hunga Tonga–Hunga Ha‘apai volcanic eruption in Tonga, which had both cooling effects from aerosols and warming ones from stratospheric water vapour, and the ramping up of solar activity in the run-up to a predicted solar maximum. But these factors explain, at most, a few hundredths of a degree in warming (Schoeberl, M. R. et al. Geophys. Res. Lett. 50, e2023GL104634; 2023). Even after taking all plausible explanations into account, the divergence between expected and observed annual mean temperatures in 2023 remains about 0.2 °C — roughly the gap between the previous and current annual record.

There is one more factor that could be playing a part. In 2020, new regulations required the shipping industry to use cleaner fuels that reduce sulfur emissions. Sulfur compounds in the atmosphere are reflective and influence several properties of clouds, thereby having an overall cooling effect. Preliminary estimates of the impact of these rules show a negligible effect on global mean temperatures — a change of only a few hundredths of a degree. But reliable assessments of aerosol emissions rely on networks of mostly volunteer-driven efforts, and it could be a year or more before the full data from 2023 are available.

This is too long a wait. Better, more nimble data-collection systems are clearly needed. NASA’s PACE mission, which launched in February, is a step in the right direction. In a few months, the satellite should start providing a global assessment of the composition of various aerosol particles in the atmosphere. The data will be invaluable for reducing the substantial aerosol-related uncertainty in climate models. Hindcasts, informed by new data, could also provide insights into last year’s climate events.

But it seems unlikely that aerosol effects provide anything close to a full answer. In general, the 2023 temperature anomaly has come out of the blue, revealing an unprecedented knowledge gap perhaps for the first time since about 40 years ago, when satellite data began offering modellers an unparalleled, real-time view of Earth’s climate system. If the anomaly does not stabilize by August — a reasonable expectation based on previous El Niño events — then the world will be in uncharted territory. It could imply that a warming planet is already fundamentally altering how the climate system operates, much sooner than scientists had anticipated. It could also mean that statistical inferences based on past events are less reliable than we thought, adding more uncertainty to seasonal predictions of droughts and rainfall patterns.

Much of the world’s climate is driven by intricate, long-distance links — known as teleconnections — fuelled by sea and atmospheric currents. If their behaviour is in flux or markedly diverging from previous observations, we need to know about such changes in real time. We need answers for why 2023 turned out to be the warmest year in possibly the past 100,000 years. And we need them quickly.

Nature 627, 467 (2024)

doi: https://doi.org/10.1038/d41586-024-00816-z

We face a climate catastrophe.  And we are still doing too little to stop it.

Sunday, January 23, 2022

Global temps to fall by 0.5 degrees after Tonga eruption

From a video by Everything Science.   Ignoring the clickbait headline ("A new ice age?"), the conclusion, based on previous examples of massive volcanic eruptions, is that global temperatures could fall by ±0.5 degrees for a period of ± 5 years.  This is 25 years of rising global temperatures temporarily reversed in one single event. 

 More scientific analysis will no doubt come up with more reliable estimates over the next few months.  I'll keep you posted.