Category: Politics

The imminent climate change crisis

But a positive TED Talk on the situation.

There have been so many disastrous activities on climate change, and I am not belittling them, but it was amazing to come across a TED Talk last Saturday that I watched. But first the speaker, Asmeret Asefaw Berhe, who was born in Asmara, Eritrea. Her bio (in part):

From WikiPedia:

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Asmeret Asefaw Berhe is a soil biogeochemist and political ecologist who is the current Director of the Office of Science at the US Department of Energy. She was previously the Professor of Soil Biogeochemistry and the Ted and Jan Falasco Chair in Earth Sciences and Geology in the Department of Life and Environmental Sciences; University of California, Merced.[1] Her research group worked to understand how soil helps regulate the Earth’s climate.

Advocacy and global impact work

Berhe’s work at the intersection of soil, climate change, and political ecology lends itself well to a number of global issues. During her graduate career, she was a member of the working group that produced the Millennium Ecosystem Assessment, which was called for by the United Nations Secretary Kofi Annan to assess the impact of humans on the environment. She was one of the lead authors on the 2005 report’s chapter on “Drivers of Change in Ecosystem Condition and Services.”[19] The Assessment received the Zayed International Prize for the Environment in 2005.[20]

In 2018, Berhe was selected as part of the inaugural National Academies of Sciences, Engineering, and Medicine New Voices in Sciences, Engineering, and Medicine cohort, as an early career leader working to advance the conversation around key emerging global issues and communicate the evidence base around those challenges.[21]

An advocate for women in science, Berhe is currently a co-Principal Investigator of ADVANCEGeo, which is working to transform the workplace climate of the geosciences to increase retention of women in the field and develop a sustainable model that can be transferred to other scientific domains. Currently, the Earth Science Women’s Network (ESWN), the Association for Women Geoscientists, and the American Geophysical Union (AGU) have partnered to address the issue of sexual harassment in the earth, space and environmental sciences.[22] The program led by Erika Marín-Spiotta and is run with support from a four-year $1.1 million grant from the National Science Foundation.[23]

She currently serves as an advisory board member of 500 Women Scientists, a grassroots organization working to make science open, inclusive, and accessible, and is on the leadership board of the Earth Science Women’s Network.

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Now from the TED Talk, firstly the description:

Part 3 of the TED Radio Hour episode What Lies Beneath.

Earth’s soil can store vast amounts of carbon. Biogeochemist Asmeret Asefaw Berhe says soil could be a powerful tool for fighting climate change – if only we stopped treating it like dirt.

About Asmeret Asefaw Berhe

Asmeret Asefaw Berhe is a soil biogeochemist and President Biden’s nominee to lead the Department of Energy Office of Science. She is a professor of soil biogeochemistry at University of California, Merced. Her research group works to understand how soil helps regulate the earth’s climate.

Berhe’s work exists at the intersection of soil, climate change, and political ecology. During her graduate career, she was a member of the working group that produced the Millennium Ecosystem Assessment, which was called for by the United Nations to assess the impact of humans on the environment.

Berhe received a B.Sc. in Soil and Water Conservation at the University of Asmara in Eritrea. She has an M.Sc. in Political Ecology from Michigan State University and a Ph.D. in Biogeochemistry from University of California, Berkeley.

This segment of the TED Radio Hour was produced by Matthew Cloutier and Sylvie Douglis and edited by Rachel Faulkner and Katie Simon. You can follow us on Facebook @TEDRadioHour and email us at TEDRadioHour@npr.org.

Now that positive TED Talk:

We wish Asmeret the very best of fortune in bringing about these changes.

Hollywood movie to reality?

Where is the global climate going?

The challenge with writing posts, albeit not so often, about the global environment, especially when I am a non-scientist, is that one relies entirely on the words of others. In the case of a recent article, published by The Conversation, the authors are claimed to be specialists, and I do not doubt their credentials.

The three authors are René van Westen who is a Postdoctoral Researcher in Climate Physics, at Utrecht University, Henk A. Dijkstra who is a Professor of Physics, also at Utrecht University, and Michael Kliphuis, a Climate Model Specialist, again at Utrecht University.

So, here is their article:

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Atlantic Ocean is headed for a tipping point − once melting glaciers shut down the Gulf Stream, we would see extreme climate change within decades, study shows

Too much fresh water from Greenland’s ice sheet can slow the Atlantic Ocean’s circulation. Paul Souders/Stone via Getty Images

René van Westen, Utrecht University; Henk A. Dijkstra, Utrecht University, and Michael Kliphuis, Utrecht University

Superstorms, abrupt climate shifts and New York City frozen in ice. That’s how the blockbuster Hollywood movie “The Day After Tomorrow” depicted an abrupt shutdown of the Atlantic Ocean’s circulation and the catastrophic consequences.

While Hollywood’s vision was over the top, the 2004 movie raised a serious question: If global warming shuts down the Atlantic Meridional Overturning Circulation, which is crucial for carrying heat from the tropics to the northern latitudes, how abrupt and severe would the climate changes be?

Twenty years after the movie’s release, we know a lot more about the Atlantic Ocean’s circulation. Instruments deployed in the ocean starting in 2004 show that the Atlantic Ocean circulation has observably slowed over the past two decades, possibly to its weakest state in almost a millennium. Studies also suggest that the circulation has reached a dangerous tipping point in the past that sent it into a precipitous, unstoppable decline, and that it could hit that tipping point again as the planet warms and glaciers and ice sheets melt.

In a new study using the latest generation of Earth’s climate models, we simulated the flow of fresh water until the ocean circulation reached that tipping point.

The results showed that the circulation could fully shut down within a century of hitting the tipping point, and that it’s headed in that direction. If that happened, average temperatures would drop by several degrees in North America, parts of Asia and Europe, and people would see severe and cascading consequences around the world.

We also discovered a physics-based early warning signal that can alert the world when the Atlantic Ocean circulation is nearing its tipping point.

The ocean’s conveyor belt

Ocean currents are driven by winds, tides and water density differences.

In the Atlantic Ocean circulation, the relatively warm and salty surface water near the equator flows toward Greenland. During its journey it crosses the Caribbean Sea, loops up into the Gulf of Mexico, and then flows along the U.S. East Coast before crossing the Atlantic.

Two illustrations show how the AMOC looks today and its weaker state in the future
How the Atlantic Ocean circulation changes as it slows. IPCC 6th Assessment Report

This current, also known as the Gulf Stream, brings heat to Europe. As it flows northward and cools, the water mass becomes heavier. By the time it reaches Greenland, it starts to sink and flow southward. The sinking of water near Greenland pulls water from elsewhere in the Atlantic Ocean and the cycle repeats, like a conveyor belt.

Too much fresh water from melting glaciers and the Greenland ice sheet can dilute the saltiness of the water, preventing it from sinking, and weaken this ocean conveyor belt. A weaker conveyor belt transports less heat northward and also enables less heavy water to reach Greenland, which further weakens the conveyor belt’s strength. Once it reaches the tipping point, it shuts down quickly.

What happens to the climate at the tipping point?

The existence of a tipping point was first noticed in an overly simplified model of the Atlantic Ocean circulation in the early 1960s. Today’s more detailed climate models indicate a continued slowing of the conveyor belt’s strength under climate change. However, an abrupt shutdown of the Atlantic Ocean circulation appeared to be absent in these climate models. https://www.youtube.com/embed/p4pWafuvdrY?wmode=transparent&start=0 How the ocean conveyor belt works.

This is where our study comes in. We performed an experiment with a detailed climate model to find the tipping point for an abrupt shutdown by slowly increasing the input of fresh water.

We found that once it reaches the tipping point, the conveyor belt shuts down within 100 years. The heat transport toward the north is strongly reduced, leading to abrupt climate shifts.

The result: Dangerous cold in the North

Regions that are influenced by the Gulf Stream receive substantially less heat when the circulation stops. This cools the North American and European continents by a few degrees.

The European climate is much more influenced by the Gulf Stream than other regions. In our experiment, that meant parts of the continent changed at more than 5 degrees Fahrenheit (3 degrees Celsius) per decade – far faster than today’s global warming of about 0.36 F (0.2 C) per decade. We found that parts of Norway would experience temperature drops of more than 36 F (20 C). On the other hand, regions in the Southern Hemisphere would warm by a few degrees.

Two maps show US and Europe both cooling by several degrees if the AMOC stops.
The annual mean temperature changes after the conveyor belt stops reflect an extreme temperature drop in northern Europe in particular. René M. van Westen

These temperature changes develop over about 100 years. That might seem like a long time, but on typical climate time scales, it is abrupt.

The conveyor belt shutting down would also affect sea level and precipitation patterns, which can push other ecosystems closer to their tipping points. For example, the Amazon rainforest is vulnerable to declining precipitation. If its forest ecosystem turned to grassland, the transition would release carbon to the atmosphere and result in the loss of a valuable carbon sink, further accelerating climate change.

The Atlantic circulation has slowed significantly in the distant past. During glacial periods when ice sheets that covered large parts of the planet were melting, the influx of fresh water slowed the Atlantic circulation, triggering huge climate fluctuations.

So, when will we see this tipping point?

The big question – when will the Atlantic circulation reach a tipping point – remains unanswered. Observations don’t go back far enough to provide a clear result. While a recent study suggested that the conveyor belt is rapidly approaching its tipping point, possibly within a few years, these statistical analyses made several assumptions that give rise to uncertainty.

Instead, we were able to develop a physics-based and observable early warning signal involving the salinity transport at the southern boundary of the Atlantic Ocean. Once a threshold is reached, the tipping point is likely to follow in one to four decades.

A line chart of circulation strength shows a quick drop-off after the amount of freshwater in the ocean hits a tipping point.
A climate model experiment shows how quickly the AMOC slows once it reaches a tipping point with a threshold of fresh water entering the ocean. How soon that will happen remains an open question. René M. van Westen

The climate impacts from our study underline the severity of such an abrupt conveyor belt collapse. The temperature, sea level and precipitation changes will severely affect society, and the climate shifts are unstoppable on human time scales.

It might seem counterintuitive to worry about extreme cold as the planet warms, but if the main Atlantic Ocean circulation shuts down from too much meltwater pouring in, that’s the risk ahead.

This article was updated to Feb. 11, 2024, to fix a typo: The experiment found temperatures in parts of Europe changed by more than 5 F per decade.

René van Westen, Postdoctoral Researcher in Climate Physics, Utrecht University; Henk A. Dijkstra, Professor of Physics, Utrecht University, and Michael Kliphuis, Climate Model Specialist, Utrecht University

This article is republished from The Conversation under a Creative Commons license. Read the original article.

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I am 79! I like to think that whatever is coming down the wires, so to speak, will be after my death. But that is a cop out for a) I have a son and a daughter who are in their early fifties, b) I have a grandson, my daughter and son-in-law’s young man, who is a teenager, with his birthday next month, and c) I could possibly live for another twenty years.

The challenge is how to bring this imminent catastrophic global change in temperature to the fore. We need a global solution now enforced by a globally respected group of scientists and leaders, and, frankly, I do not see that happening.

All one can do is to hope. Hope that the global community will eschew the present-day extremes of warring behaviour and see the need for change. That is NOW!

So that the Hollywood movie, The Day After Tomorrow, remains a fictional story. And for those that have forgotten the film or who have never seen it, here is a small slice of a Wikipedia report:

The Day After Tomorrow is a 2004 American science fiction disaster film conceived, co-writtendirected, co-produced by Roland Emmerich, based on the 1999 book The Coming Global Superstorm by Art Bell and Whitley Strieber, and starring Dennis QuaidJake GyllenhaalSela WardEmmy Rossum, and Ian Holm. The film depicts catastrophic climatic effects following the disruption of the North Atlantic Ocean circulation, in which a series of extreme weather events usher in climate change and lead to a new ice age.

Wikipedia

And here is a YouTube video:

There we go, folks!

This year’s Reith Lecture

The Future of Democracy” is, for me, incredibly interesting.

I haven’t a clue as to how long I have been listening to the annual Reith Lecture on BBC Radio 4. It has been many years.

As Wikipedia explains:

The Reith Lectures is a series of annual BBC radio lectures given by leading figures of the day. They are commissioned by the BBC and broadcast on Radio 4 and the World Service. The lectures were inaugurated in 1948 to mark the historic contribution made to public service broadcasting by Lord Reith, the corporation’s first director-general.

Reith maintained that broadcasting should be a public service that aimed to enrich the intellectual and cultural life of the nation. It is in this spirit that the BBC each year invites a leading figure to deliver the lectures. The aim is to advance public understanding and debate about issues of contemporary interest.

Wikipedia
From the BBC’s History of the BBC.

As the BBC explains on the BBC Sounds website:

Released On: 29 Nov 2023

Available for over a year

This year’s BBC Reith Lecturer is Ben Ansell, Professor of Comparative Democratic Institutions at Nuffield College, Oxford University.

He will deliver four lectures called “Our Democratic Future,” asking how we can build a politics that works for all of us with systems which are robust to the challenges of the twenty first century, from climate change to artificial intelligence. In this first lecture, recorded at New Broadcasting House in London in front of an audience, Professor Ansell asks whether we are in a ‘democratic recession’, where longstanding democracies are at risk of breakdown and authoritarianism is resurgent. And he examines how resilient democracies are to the challenges of artificial intelligence, social media and if they can effectively address core challenges from climate change to inequality.

The Reith Lectures are presented by Anita Anand and produced by Jim Frank. The Editor is China Collins. Reith Co-ordinator is Brenda Brown. The series is mixed by Rod Farquhar and Neil Churchill.

Here is the link to that first lecture: https://www.bbc.co.uk/sounds/play/m001sty4

Ben Ansell’s website is here, from which I have taken this:

Welcome to my website. I am Professor of Comparative Democratic Institutions at Nuffield College, University of Oxford. My work focuses on a variety of issues in political economy, including both comparative politics and international relations.

I am also co-editor (with David Samuels) of Comparative Political Studies.

My 2010 book, From the Ballot to the Blackboard, published by Cambridge University Press, is available here. My 2014 book (with David Samuels), Inequality and Democratization: An Elite-Competition Approach, published by Cambridge University Press, is available here.

This site contains a variety of working papers, syllabi, my biography, and other information about my academic work. My CV is available here.

There is so much more to our dogs than we realise!

A fascinating post on Treehugger.

It is Wednesday morning in Southern Oregon and already I am having to think about the post for tomorrow. Not that this is a problem it is just one more thing that I want to do. Plus we are in the middle of a local heat wave with temperatures expected to be well above 100 degrees F and possibly 109 deg F (42.8 deg C.).

So I am turning to Treehugger for a dog post and hoping that I shall be able to share it with you all.

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Dogs Could Revolutionize the Sustainability of Future Pandemic Testing

Scent dogs are quicker, more effective, and create less healthcare waste than conventional COVID tests.

By Melissa Breyer

Senior Editorial Director

  • Hunter College
  • F.I.T., State University of New York
  • Cornell University

Published July 17, 2023 

Joe McDonald / Getty Images

One of the more frustrating roadblocks in navigating the COVID-19 pandemic was the difficulty in getting quick, accurate test results. Sometimes, results for PCR tests took up to two weeks, rendering their diagnosis useless for planning isolation scenarios. Meanwhile, rapid tests still oftentimes provide a false negative if taken too soon after infection. When I had COVID, I was four days into symptoms before I got a positive at-home test—I’ve heard many people recount similar stories.

The testing we have is certainly better than nothing, but it leaves a lot to be desired. If only there were a better way, say, using something with remarkable innate sensitivity. Like, dogs. Far-fetched? Not at all.

review of recent research concluded that scent dogs may represent a cheaper, faster, and more effective way to detect COVID-19 and could be a key tool in future pandemics. This could be a game-changer for sustainability as well, eliminating the enormous amount of waste that comes with billions of testing kits.

The review, published in De Gruyter’s Journal of Osteopathic Medicine, found that scent dogs are as effective, or even more effective, than conventional COVID-19 tests such as PCR tests.

Most of us know that dogs have a remarkable sense of smell; they sniff out drugs and explosives and have even successfully identified patients with certain cancers, Parkinson’s, and diabetes. They have up to 300 million olfactory cells, compared to 5 or 6 million in humans. And they use one-third of their brains to process scent information—humans just use 5%.

Professor Tommy Dickey of the University of California, Santa Barbara, and Heather Junqueira of BioScent Detection Dogs analyzed 29 different studies in which dogs detected COVID-19. “The studies were performed using over 31,000 samples by over 400 scientists from more than 30 countries using 19 different dog breeds. In some studies, the scent dogs sniffed people directly, sometimes in public places as a health screening. In others, the dogs sniffed patient samples such as sweat, saliva, or urine samples,” explains a press statement from De Gruyter.

Dogs’ Incredible Accuracy 

The dogs ranged from Labrador retrievers and Belgian malinois to beagles and English springer spaniels. In most of the studies, the dogs demonstrated similar or better sensitivity and specificity than the current gold-standard PCR tests or antigen tests.

“In one study, four of the dogs could detect the equivalent of less than 2.6 x 10−12 copies of viral RNA per milliliter. This is equivalent to detecting one drop of any odorous substance dissolved in ten and a half Olympic-sized swimming pools and is three orders of magnitude better than modern scientific instruments,” notes De Gruyter.

Remarkably, they not only detected COVID-19 in symptomatic, pre-symptomatic, and asymptomatic patients, but they could also sniff out COVID variants and even long COVID.

Considering the Safety of the Dogs 

One thing we certainly don’t want is for dogs to become collateral damage in the pursuit of better testing. The study authors acknowledge this, writing that the “safety of scent dogs, their handlers, and those who are inspected by the dogs is critical for the acceptance and implementation of the scent dog screening and testing approach.”

“This is consistent with the One Health paradigm,” they add, “which defines health as more than the absence of disease and recognizes the interrelationships among humans, animals, and environmental welfare.”

The authors evaluated whether medical detection dogs could contract and become ill with the COVID-19 virus and if dogs pass on the COVID-19 virus to humans. From a number of studies, they concluded that dogs are in the low-risk category. “To our knowledge, there have been no deaths of dogs that can be unequivocally attributed to COVID-19,” the authors explain. “Importantly, the studies described above suggest that it is safe for healthy individual handlers to utilize scent dogs to directly screen and test individuals who may be infected with the COVID-19 virus.”

Speedy Test Results 

A major benefit of using the dogs is their speed. In one study, researchers were able to do a lineup with 40 samples, including sample collection, lineup loading, and unloading, within just 3  minutes.

“The time between RT-PCR sampling and the return of results can be up to days, whereas the RAG test results are obtained within about 15 min.,” write the study authors. “Again, if scent dogs directly sniff individuals, results are learned in seconds, or a few minutes if samples are taken and sniffed soon after by the dogs.”

“The criticality of the speed of the return of test results cannot be overemphasized,” the authors add.

Elimination of Plastic Waste 

That dogs could provide a result in seconds to minutes is crucial. But additionally, and importantly, scent tests by dogs don’t require expensive lab equipment or create mountains of plastic waste, unlike conventional diagnostic approaches.

As of December 22, 2022, the United States alone had performed around 1.15 billion tests for COVID-19. Thinking of all the material for the testing kits and all the resources used for testing labs and sending samples around, etc., the reduction in ecological footprint is potentially tremendous.

Not to mention the cost. Some of the research in the review was, in fact, motivated by the need for inexpensive testing in developing nations, the authors note.

“Although many people have heard about the exceptional abilities of dogs to help humans, their value to the medical field has been considered fascinating, but not ready for real-world medical use,” says Dickey. “Having conducted this review, we believe that scent dogs deserve their place as a serious diagnostic methodology that could be particularly useful during pandemics, potentially as part of rapid health screenings in public spaces. We are confident that scent dogs will be useful in detecting a wide variety of diseases in the future.”

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In the interests of expanding the argument, here is a copy of a comment left to that original post:

Here we go again, using animals for testing. I believe that dogs can’t smell covid and detected it 100%, but we humans NEVER treat animals with the respect and equality they deserve, so I am very concern for the safety and health of testing “smell Covid” dogs… I know a person that have esophageal cancer and for almost 5 years before it was diagnosed, his dog (an adorable mutt) insisted on crawling over her owner chest every single time that he laid down, in an attempt to “cure” the inflammation in that spot. After the cancer was eliminated with chemo and surgery the dog stopped doing it… 
I which we humans were more connected and attentive with animal wisdom, to learn from them, respecting and became better people.

I think that second sentence should read can smell covid but have left it how it was printed.

Anyway, I will leave readers to cover the main article which speaks very highly of man’s best friend.

These Heat Waves?

What is the truth?

Today, August 14th, here in Southern Oregon we are expecting 111 degrees Fahrenheit or 43.8 degrees C. That is really hot! (And at home it reached 108 deg. F. at 3pm.)

So it seems pertinent to republish a post from The Conversation that was published on July 21st, 2023.

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Is it really hotter now than any time in 100,000 years?

By Darrell Kaufman

Professor of Earth and Environmental Sciences, Northern Arizona University

As scorching heat grips large swaths of the Earth, a lot of people are trying to put the extreme temperatures into context and asking: When was it ever this hot before?

Globally, 2023 has seen some of the hottest days in modern measurements, but what about farther back, before weather stations and satellites?

Some news outlets have reported that daily temperatures hit a 100,000-year high. 

As a paleoclimate scientist who studies temperatures of the past, I see where this claim comes from, but I cringe at the inexact headlines. While this claim may well be correct, there are no detailed temperature records extending back 100,000 years, so we don’t know for sure.

Here’s what we can confidently say about when Earth was last this hot.

This is a new climate state

Scientists concluded a few years ago that Earth had entered a new climate state not seen in more than 100,000 years. As fellow climate scientist Nick McKay and I recently discussed in a scientific journal article, that conclusion was part of a climate assessment report published by the Intergovernmental Panel on Climate Change (IPCC) in 2021.

Earth was already more than 1 degree Celsius (1.8 Fahrenheit) warmer than preindustrial times, and the levels of greenhouse gases in the atmosphere were high enough to assure temperatures would stay elevated for a long time.

Earth’s average temperature has exceeded 1 degree Celsius (1.8 F) above the preindustrial baseline. This new climate state will very likely persist for centuries as the warmest period in more than 100,000 years. The chart shows different reconstructions of temperature over time, with measured temperatures since 1850 and a projection to 2300 based on an intermediate emissions scenario. D.S. Kaufman and N.P. McKay, 2022, and published datasets, Author provided

Even under the most optimistic scenarios of the future – in which humans stop burning fossil fuels and reduce other greenhouse gas emissions – average global temperature will very likely remain at least 1 C above preindustrial temperatures, and possibly much higher, for multiple centuries.

This new climate state, characterized by a multi-century global warming level of 1 C and higher, can be reliably compared with temperature reconstructions from the very distant past.

How we estimate past temperature

To reconstruct temperatures from times before thermometers, paleoclimate scientists rely on information stored in a variety of natural archives.

The most widespread archive going back many thousands of years is at the bottom of lakes and oceans, where an assortment of biological, chemical and physical evidence offers clues to the past. These materials build up continuously over time and can be analyzed by extracting a sediment core from the lake bed or ocean floor.

University of Arizona scientist Ellie Broadman holds a sediment core from the bottom of a lake on Alaska’s Kenai Peninsula. Emily Stone

These sediment-based records are rich sources of information that have enabled paleoclimate scientists to reconstruct past global temperatures, but they have important limitations.

For one, bottom currents and burrowing organisms can mix the sediment, blurring any short-term temperature spikes. For another, the timeline for each record is not known precisely, so when multiple records are averaged together to estimate past global temperature, fine-scale fluctuations can be canceled out.

Because of this, paleoclimate scientists are reluctant to compare the long-term record of past temperature with short-term extremes.

Looking back tens of thousands of years

Earth’s average global temperature has fluctuated between glacial and interglacial conditions in cycles lasting around 100,000 years, driven largely by slow and predictable changes in Earth’s orbit with attendant changes in greenhouse gas concentrations in the atmosphere. We are currently in an interglacial period that began around 12,000 years ago as ice sheets retreated and greenhouse gases rose.

Looking at that 12,000-year interglacial period, global temperature averaged over multiple centuries might have peaked roughly around 6,000 years ago, but probably did not exceed the 1 C global warming level at that point, according to the IPCC reportAnother study found that global average temperatures continued to increase across the interglacial period. This is a topic of active research.

That means we have to look farther back to find a time that might have been as warm as today.

The last glacial episode lasted nearly 100,000 years. There is no evidence that long-term global temperatures reached the preindustrial baseline anytime during that period.

If we look even farther back, to the previous interglacial period, which peaked around 125,000 years ago, we do find evidence of warmer temperatures. The evidence suggests the long-term average temperature was probably no more than 1.5 C (2.7 F) above preindustrial levels – not much more than the current global warming level.

Now what?

Without rapid and sustained reductions in greenhouse gas emissions, the Earth is currently on course to reach temperatures of roughly 3 C (5.4 F) above preindustrial levels by the end of the century, and possibly quite a bit higher.

At that point, we would need to look back millions of years to find a climate state with temperatures as hot. That would take us back to the previous geologic epoch, the Pliocene, when the Earth’s climate was a distant relative of the one that sustained the rise of agriculture and civilization.

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It is difficult to know what to say other than one hopes that Governments and country leaders recognise the situation and DO SOMETHING!

As Dr. Michael Mann put it in the last issue of The Humanist: “The only obstacles aren’t the laws of physics, but the flaws in our politics.

I have a son and a daughter in their early 50’s and a grandson who is 12. They, along with millions of other younger people, need action now.

Please!

Journalism.

A start to a fascinating programme on BBC Radio 4.

Yesterday morning (Oregon time) had me listening to a new series on BBC Sounds. It was Frontlines of Journalism. Here is what the Beeb had to say about it:

Released On: 27 Feb 2023

Available for over a year

In the spring of 2023, twenty years after the Americans, the British and their allies invaded to overthrow Saddam Hussein, BBC International Editor Jeremy Bowen was reporting from Iraq for the BBC. He described the invasion as ‘a catastrophe’. Taking you to some of the most difficult stories Jeremy and other journalists have covered; in this episode – why impartiality is not about trying to get perfect balance, the truth lying somewhere in the middle.  Often it does not.   Jeremy speaks with: journalist Rana Rahimpour who was born in Iran but left when she was 25 to work for the BBC; former BBC bureau chief Milton Nkosi, who grew up under apartheid in Soweto, South Africa; journalist and environmentalist George Monbiot, and CNN’s Chief International Anchor Christiane Amanpour.

Presenter: Jeremy Bowen Producer: Georgia Catt Assistant Producer: Sam Peach Additional research: Rob Byrne Series mixing: Jackie Margerum Series Editor: Philip Sellars.

But in wanting to present a little more to you readers, I did some research on the topic and came across this article published by the Reuters Institute at the University of Oxford. I cannot see a warning about not sharing this with you.

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Impartiality is still key for news audiences. Here’s how to rethink it for the digital age

Our research shows people still value the ideal of impartial news. A new report offer suggestions to adapt it to a challenging environment.

Election posters of Germany’s top candidates for chancellor.
September 16, 2021. REUTERS/Fabrizio Bensch

Nic Newman

Tuesday 19 October 2021

Most people agree that news organisations and journalists should reflect all sides of an issue and not push a particular agenda – at least when asked about it in surveys. Our 2021 Digital News Report finds this to be true across countries and age groups

However, many people feel that the media often fail to live up to this ideal. Our surveys consistently show that committed partisans believe that traditional media coverage is unfair, especially in countries where debates about politics or social justice have become deeply polarised. In recent years we’ve also seen an increase in opinion-led television formats such as Fox News/MSNBC in the United States, GB News in the UK and CNews in France, while many traditional print publications have focussed on distinctive and robust opinion as a way of standing out online.

Together with the growth of partisan websites, YouTubers and podcasters, audiences now have access to a wider range of views than ever before. Against this background, some have questioned traditional approaches to impartiality that try to represent all points of view within a single broadcast or publication. Other critics go further – arguing that impartiality has given extreme or unrepresentative views undue prominence, through its focus on balance, helping to legitimise climate change deniers and anti-vaxxers amongst others.

This all raises the question: how relevant is impartial and objective journalism to audiences today? The Reuters Institute commissioned market research company JV Consulting to carry out qualitative research in four countries – Brazil, Germany, the UK, and the US – with different news markets, traditions of public broadcasting, and systems of media regulation. They conducted a series of focus groups and in-depth interviews on our behalf in February and March 2021 with politically and ethnically diverse groups of older and younger people interested in and engaged with news (52 people in total).

These are some of the key findings of the report:

  • Engaged audiences in the four countries researched still care about impartiality and say it helps define news, even if some consider it an impossible ideal. They want journalists to focus on facts, objectivity and fairness, and to steer clear of opinions and bias in reporting, leaving them to decide for themselves how they feel about the news. Alongside accuracy, impartiality is a foundational value of news that underpins audiences’ trust.
  • People recognise the risk of giving exposure to extreme views or one side in the name of balance. However, evidence from this group of engaged users is that they are even more concerned about the suppression and silencing of viewpoints. There are particular misgivings about this in Brazil and Germany, where twentieth century history frames some people’s views.
  • Most participants recognise that there were some topics (e.g., science stories, natural disasters, and questions of social justice) where there were not always two or more sides to represent. Here, many felt there should be more latitude for journalists to present just one perspective or an established point of view. There are also expectations that journalists will show greater empathy and connection in their reporting than perhaps traditional interpretations of impartiality have allowed in the past.
  • Across countries, newer digital formats such as social media are perceived as carrying more risk of bias along with the growth of more informal and entertaining broadcast formats such as chat shows and podcasts. Impartiality is more vulnerable in these contexts, as well as when the news is emotive or controversial, because journalists’ personal views risk slipping out in the impulse to engage, although the subject and intention have a bearing on how audiences feel about this.
  • Younger people, who have grown up using more informal and digital sources, tend to have different expectations of impartiality, often looking for journalism that aligns with their values. But overall, their underlying attitudes and desires are remarkably similar to older people’s.
  • Different countries’ news traditions shape people’s experiences and expectations. Audiences in the US cannot envisage a world without partisan news outlets, but in the UK and Germany, with their public service traditions, most audiences still laud the upholding of impartiality.
  • Respondents also delineate between news reporting (where impartiality is expected) and opinion/commentary (where people expect that views are argued for). Importantly, many told us that they often find it difficult to distinguish between the two, especially online. Interviewees like news and they like opinion, but want them very clearly separated. 

It is important to recognise that not all news organisations are committed to impartiality: indeed, some make a virtue of creating news and opinion with a clear point of view. But most will want to take note of audience desires for a range of views to be represented and to see clearer labelling of news and opinion. For news organisations that are committed to impartiality, the report highlights the increased dangers in areas where journalism is more informal or accessed in distributed environments. Public media like the BBC have already embarked on updated training and issued new guidelines on these issues. Audiences have also sent a clear signal in this report that they would like much greater transparency over why certain perspectives are included or excluded, however difficult this may be in practice.

Finally, the report notes that given the importance of social media, search and other access points, technology platforms such as Facebook, Google and Apple, will also need to develop clearer guidelines on impartiality – as their own trust levels will depend on fair implementation of policies around inclusion and exclusion, whether by algorithm or human intervention.

Download the full report

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Now this isn’t everyone’s cup of tea but when one thinks of the enormous amount of news and information one gathers from the television, the radio, the press and a wide variety of online sources then thinking a little more about the truth of what we are being told is crucial to us making wise decisions. including voting where appropriate.

People still value the ideal of impartial news; there is no question about that!

One of the numerous effects of a warming climate.

An article that I wanted to share with you!

There is no question that we are warming the world, and in my mind, there’s very little doubt that it is us older persons who are the cause. Take this chart, for example, where the effects of populations in the 1980’s – 2000’s had a dramatic impact on the worsening trend:

The reason for today’s post is to share an article that writes of the science of precipitation.

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THE PHYSICS OF PRECIPITATION
IN A WARMING CLIMATE

WRITTEN BY DR ASHLEIGH MASSAM

The scientific consensus on climate change is that atmospheric temperatures are rising and will continue to rise. Mean global temperatures are already 1˚C warmer than preindustrial times (relative to 1850–1900), predominantly due to human activity increasing the amount of greenhouse gases in the atmosphere (IPCC, 2018a). The 2020 Paris Conference of Parties (COP) agreed on the aim of a 1.5˚C cap on climate change-induced warming, although without rapidly introducing measures to reduce carbon and greenhouse gas emissions, global warming could easily go beyond this limit. 

In fact, the Intergovernmental Panel on Climate Change (IPCC) warns that even a mean global temperature increase of 1.5˚C will lead to an increase in the frequency and intensity of rainfall events. But what links a warmer climate to an increase in intense rainfall events? This blog post will explain the physics behind the changes to precipitation rates in a warming climate.

A SIMPLE OVERVIEW OF THE PHYSICS

Climate projections simultaneously warn of higher annual mean surface temperatures, higher rates of intense rainfall and more frequent intense rainfall events. The atmospheric moisture content increases with respect to a change in temperature – essentially, the warmer the atmosphere, the more water is held in the atmosphere, and therefore higher rates of precipitation can be expected.

This is explained by the Clausius-Clapeyron relationship between surface temperature and water vapour. According to the Clausius-Clapeyron relationship, atmospheric water content increases by between 6 and 7% per 1 °C. Therefore, even just an increase of 1.5°C could result in ~9% more water in the atmosphere, which could have a major impact on storm systems and subsequent rainfall.

Storm systems travelling across oceans will have an increased moisture content from water evaporated from the sea surface, forming a larger storm system and therefore more precipitation. JBA has recently discussed the risk of flooding from intensifying rainfall due to climate change and this will be explored in respect to storm systems later in this blog.

HOW PRECIPITATION IS FORMED

In meteorology, precipitation can be liquid or solid water that falls from the atmosphere and reaches the Earth’s surface. Types of precipitation include rain, sleet, or snow, depending on the temperature of the atmosphere. During the water cycle (fig. 1), water evaporates from the surface into the atmosphere, and changes state from liquid to vapour. The water vapour forms cloud droplets, which join together until the heavy droplets fall from the clouds as precipitation. Several processes affect this simple view of the journey from evaporation to precipitation.

Figure 1: A diagram of the water cycle showing the connections between water masses, the atmosphere and the transpiration and condensation of water vapour.

THE SURFACE TEMPERATURE – PRECIPITATION RELATIONSHIP IN MORE DEPTH

The connection between precipitation and surface temperature is defined by the Clausius-Clapeyron equations. The Clausius-Clapeyron equations calculate the energy required to cause a chemical reaction at a given pressure. In terms of precipitation, the Clausius-Clapeyron equations can be used to calculate the thermal energy required to condense water vapour into droplets when the atmospheric pressure is known. 

When water droplets are evaporated into the atmosphere, they travel upwards. As the Clausius-Clapeyron relationship is dependent on atmospheric pressure, the thermal energy requirement for a phase change is lower at a lower pressure. As the water droplets travel upwards, two things happen: 

  1. The atmospheric pressure decreases, and 
  2. The atmospheric temperature cools (this is known as the temperature lapse rate and is typically estimated at -6.5°C per kilometre). 

When the water vapour reaches an elevation where the atmospheric pressure and temperature satisfy the Clausius-Clapeyron relationship, the water vapour condenses into cloud droplets. 

IMPACTS OF A WARMING CLIMATE ON THE SURFACE TEMPERATURE – PRECIPITATION RELATIONSHIP

The release of carbon dioxide, and other greenhouse gases, into the atmosphere by humans has already led to climate change in the form of atmospheric warming. Long-term measurements show that the atmosphere has already warmed by 1°C since 1900. IPCC projections suggest that additional warming is inevitable, and attempts are being made to keep global atmospheric warming to under 1.5°C. Although, as previously mentioned, this could still increase the frequency and intensity of rainfall (IPCC, 2018b). To understand how an increase in annual mean surface temperature will influence rainfall events, we can apply the Clausius-Clapeyron relationship in a geographical context. 

As the Clausius-Clapeyron equations define the relationship between vapour and pressure, they can also be used to define the saturation vapour pressure with respect to temperature. In meteorology, the saturation vapour pressure is the maximum pressure of water vapour, at a given temperature, before it condenses. Therefore, the pressure required to condense a water droplet increases exponentially with respect to a change in temperature. 

This means that the Clausius-Clapeyron relationship can be used to determine the moisture content of the atmosphere. Warmer atmospheric temperatures will increase the atmospheric moisture content before condensation because the atmospheric pressure will not be affected by climate change in the same way as temperature. This results in the previously mentioned calculation that moisture content will increase by ~6.5% in the atmosphere per 1°C increase in temperature and means that atmospheric warming of 1.5°C will yield an increase in atmospheric moisture content of ~9%.

THE EFFECT ON STORMS AND PRECIPITATION

This ~9% increase has an impact on storm systems and therefore rainfall. Hurricane Harvey made landfall on the coast of Texas in August 2017. Over seven days, areas of Texas including Galveston and Houston experienced nearly 1.5 metres of rainfall. 

Research published since the event suggests that the intensity of Hurricane Harvey is attributable to a combination of the storm stalling over one location and climate change. The Gulf of Mexico, the source of moisture for Hurricane Harvey, has experienced anthropogenic-induced sea-surface temperature warming of 1°C since preindustrial times (Pall et al., 2017; Trenberth et al., 2018). Comparing Hurricane Harvey’s precipitation records with an equivalent event from 1950, extreme value analysis concluded that climate change contributed to a 5-7% increase in rainfall rates covering the full region affected by the hurricane (Risser and Wehner, 2017). 

With an increase in rainfall events and the wider impacts of climate change, it’s important for organisations to think about the potential risk to their business. JBA’s UK Climate Change Flood Model assesses and quantifies future flood risk in the UK under a warming climate and complements our range of global Climate Change Analytics, helping clients to understand and manage the effects of climate change on their assets and to enable long-term planning.

For more information on our climate change work, including bespoke consultancy services offered by our expert team, get in touch.

REFERENCES

IPCC, 2018a: Summary for Policymakers. In: Global warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.-O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I.Gomis, E. Lonnoy, T.Maycock, M.Tignor, and T. Waterfield (eds.)].]. World Meteorological Organization, Geneva, Switzerland.

IPCC, 2018b. Impacts of 1.5ºC Global Warming on Natural and Human Systems. In: Global Warming of 1.5°C. An IPCC Special Report on the impacts of global warming of 1.5°C above pre-industrial levels and related global greenhouse gas emission pathways, in the context of strengthening the global response to the threat of climate change, sustainable development, and efforts to eradicate poverty [Masson-Delmotte, V., P. Zhai, H.-O. Pörtner, D. Roberts, J. Skea, P.R. Shukla, A. Pirani, W. Moufouma-Okia, C. Péan, R. Pidcock, S. Connors, J.B.R. Matthews, Y. Chen, X. Zhou, M.I.Gomis, E. Lonnoy, T.Maycock, M.Tignor, and T. Waterfield (eds.)]. World Meteorological Organization, Geneva, Switzerland.

Pall, P., Patricola, C.M., Wehner, M.F., Stone, D.A., Paciorek, C.J., Collins, W.D. 2017. Diagnosing conditional anthropogenic contributions to heavy Colorado rainfall in September 2013. Weather and Climate Extremes, 17, pp 1-6.

Risser, M.D., Wehner, MF. 2017. Attributable human-induced changes in the likelihood and magnitude of the observed extreme precipitation during Hurricane Harvey. Geophysical Research Letters¸ 44(24), doi: 10.1002/2017GL075888.

Trenberth, K.E., Cheng, L., Jacobs, P., Zhang, Y., Fasullo, J. 2018. Hurricane Harvey links to ocean heat content and climate change adaptation. Earth’s Future, 6(5), doi: 10.1029/2018EF000825

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The IPCC states what is clearly known in science circles; a warmer atmosphere equals more moisture in the air and that translates into more rainfall.

It comes down to warmer atmospheric temperatures increasing the atmospheric moisture content before condensation, simply because the atmospheric pressure will not be affected by climate change in the same way as temperature, as was described earlier in the paper. The reference to Hurricane Harvey was very powerful.

The world has to focus on climate change in an urgent manner. Because there isn’t a great deal of time, something like 10 years, at most, to bring about huge changes in the way we consume energy.

Please, please watch this

And I wish I knew what to say…

This is a video that is three years old.

But it is more pertinent today than it was when it was first released.

The video asks ‘… why we never really learnt how to talk about this’.

The video is a little less than ten minutes long so watch it now, with the family as well, if that is appropriate, and perhaps have a discussion afterwards.

Jean and I do not have any answers especially when the news is all about other things.

Yes, we know that the climate is changing but what exactly does that mean is a more difficult question to answer. Mind you there are a growing number of organisations committed to finding answers.

Yes, there are many scientists who have clear opinions on the situation but we need a global movement, NOW, to address this very urgent requirement, and there is no sign that the global community are even talking about climate change let alone doing something.

Please, please watch this:

I would love to hear your thoughts.

Plastics in the ocean

A fascinating insight into recovered plastic.

Like so many others we do our little bit regarding plastic but do not properly think about the issue. I have to admit that I am not even sure if all plastics are harmful or just some.

But I comprehend art!

That is why I am republishing, with permission, this article from The Conversation.

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My art uses plastic recovered from beaches around the world to understand how our consumer society is transforming the ocean

Pam Longobardi amid a giant heap of fishing gear that she and volunteers from the Hawaii Wildlife Fund collected in 2008. David Rothstein, CC BY-ND

Pam Longobardi, Georgia State University

I am obsessed with plastic objects. I harvest them from the ocean for the stories they hold and to mitigate their ability to harm. Each object has the potential to be a message from the sea – a poem, a cipher, a metaphor, a warning.

My work collecting and photographing ocean plastic and turning it into art began with an epiphany in 2005, on a far-flung beach at the southern tip of the Big Island of Hawaii. At the edge of a black lava beach pounded by surf, I encountered multitudes upon multitudes of plastic objects that the angry ocean was vomiting onto the rocky shore.

I could see that somehow, impossibly, humans had permeated the ocean with plastic waste. Its alien presence was so enormous that it had reached this most isolated point of land in the immense Pacific Ocean. I felt I was witness to an unspeakable crime against nature, and needed to document it and bring back evidence.

I began cleaning the beach, hauling away weathered and misshapen plastic debris – known and unknown objects, hidden parts of a world of things I had never seen before, and enormous whalelike colored entanglements of nets and ropes.

Three large plastic art installations, the central one a cornucopia spilling plastic objects onto the floor.
‘Bounty Pilfered’ (center), ‘Newer Laocoön’ (left) and ‘Threnody’ (right). All made of ocean plastic from the Atlantic, Pacific and Gulf of Mexico, installed at the Baker Museum in Naples, Fla., 2022. Pam Longobardi, CC BY-ND

I returned to that site again and again, gathering material evidence to study its volume and how it had been deposited, trying to understand the immensity it represented. In 2006, I formed the Drifters Project, a collaborative global entity to highlight these vagrant, translocational plastics and recruit others to investigate and mitigate ocean plastics’ impact.

My new book, “Ocean Gleaning,” tracks 17 years of my art and research around the world through the Drifters Project. It reveals specimens of striking artifacts harvested from the sea – objects that once were utilitarian, but have been changed by their oceanic voyages and come back as messages from the ocean.

Array of plastic objects, including toys, action figures and fragments of larger objects.
‘Drifters Objects,’ a tiny sample of the plastic artifacts Pam Longobardi has collected from beaches worldwide. Pam Longobardi, CC BY-ND

Living in a plastic age

I grew up in what some now deem the age of plastic. Though it’s not the only modern material invention, plastic has had the most unforeseen consequences.

My father was a biochemist at the chemical company Union Carbide when I was a child in New Jersey. He played golf with an actor who portrayed “The Man from Glad,” a Get Smart-styled agent who rescued flustered housewives in TV commercials from inferior brands of plastic wrap that snarled and tangled. My father brought home souvenir pins of Union Carbide’s hexagonal logo, based on the carbon molecule, and figurine pencil holders of “TERGIE,” the company’s blobby turquoise mascot.

On the 2013 Gyre Expedition, Pam Longobardi traveled with a team of scientists, artists and policymakers to investigate and remove tons of oceanic plastic washing out of great gyres, or currents, in the Pacific Ocean, and make art from it.

Today I see plastic as a zombie material that haunts the ocean. It is made from petroleum, the decayed and transformed life forms of the past. Drifting at sea, it “lives” again as it gathers a biological slime of algae and protozoans, which become attachment sites for larger organisms.

When seabirds, fish and sea turtles mistake this living encrustation for food and eat it, plastic and all, the chemical load lives on in their digestive tracts. Their body tissues absorb chemicals from the plastic, which remain undigested in their stomachs, often ultimately killing them.

Two piles of tiny particles of virtually identical sizes.
Plastic ‘nurdles,’ (left), tiny pellets that serve as raw materials for manufacturing plastic products, and herring roe, or eggs (right). These visually analogous forms exemplify how fish can mistake plastic for food. Pam Longobardi, CC BY-ND

The forensics of plastic

I see plastic objects as the cultural archaeology of our time – relics of global late-capitalist consumer society that mirror our desires, wishes, hubris and ingenuity. They become transformed as they leave the quotidian world and collide with nature. By regurgitating them ashore or jamming them into sea caves, the ocean is communicating with us through materials of our own making. Some seem eerily familiar; others are totally alien.

Two views of a degraded arm from a plastic doll, found on Playa Jaco in Costa Rica.
A degraded plastic doll arm, from the series ‘Evidence of Crimes.’ Pam Longobardi, CC BY-ND

A person engaging in ocean gleaning acts as a detective and a beacon, hunting for the forensics of this crime against the natural world and shining the light of interrogation on it. By searching for ocean plastic in a state of open receptiveness, a gleaner like me can find symbols of pop culture, religion, war, humor, irony and sorrow.

A rolling landscape covered with thousands of life vests.
‘Division Line,’ 2016. This photograph shows the ‘life-jacket cemetary’ in Lesvos, Greece. Traumatized asylum-seekers and migrants arriving by boat from Türkiye leave the life vests on shore as they stagger inland. Most of the waste is plastic. © Pam Longobardi, CC BY-ND

In keeping with the drifting journeys of these material artifacts, I prefer using them in a transitive form as installations. All of these works can be dismantled and reconfigured, although plastic materials are nearly impossible to recycle. I display some objects as specimens on steel pins, and wire others together to form large-scale sculptures.

A plastic bottle cap inscribed 'Endless' and a photograph of a beach littered with plastic objects.
From the series ‘Prophetic Objects,’ a plastic cap from a Greek manufacturer of cleaning products, found on the Greek island of Kefalonia. Pam Longobardi, CC BY-ND

I am interested in ocean plastic in particular because of what it reveals about us as humans in a global culture, and about the ocean as a cultural space and a giant dynamic engine of life and change. Because ocean plastic visibly shows nature’s attempts to reabsorb and regurgitate it, it has profound stories to tell.

A large sculpted anchor in the center of an art gallery, with ties to life preservers mounted on the ceiling.
‘Albatross’ and ‘Hope Floats,’ 2017. Recovered ocean plastic, survival rescue blankets, life vest straps and steel. Pam Longobardi, CC BY-ND

I believe humankind is at a crossroads with regards to the future. The ocean is asking us to pay attention. Paying attention is an act of giving, and in the case of plastic pollution, it is also an act of taking: Taking plastic out of your daily life. Taking plastic out of the environment. And taking, and spreading, the message that the ocean is laying out before our eyes.

Pam Longobardi, Regents’ Professor of Art and Design, Georgia State University

This article is republished from The Conversation under a Creative Commons license. Read the original article.

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Pam at one point describes the ocean plastic”… because of what it reveals about us as humans in a global culture, and about the ocean as a cultural space and a giant dynamic engine of life and change …”. It raises questions that I can only ponder the answer. Ultimately, are there too many inhabitants on this planet? What does the next generation think? Is there an answer?

Why is intelligent life so rare?

Maybe it is because of a ‘Great Filter‘.

Like so many others I read many items online. One of the websites that I follow is the EarthSky site because for a long time I have been interested in space.

So when I saw an article on why intelligent life is so rare in our Milky Way I read it fully. And hoped it would be of interest to others.

Here it is:

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What is the Great Filter, and can we survive it?

Posted by

Kelly Kizer Whitt and Deborah Byrd

November 17, 2022

This graphic depicts intelligent civilizations as stars. The vertical lines represent Great Filters that civilizations do or don’t survive. This graphic depicts Earth’s human population (the yellow “star”) approaching its own Great Filter. How would we surpass it, and keep going? Image via NASA/ arXiv.

What is the Great Filter?

Is intelligent life common, or rare in our Milky Way galaxy? If it’s common, why haven’t we encountered it? While discussing UFOs on a walk to lunch in the year 1950, the physicist Enrico Fermi is famously said to have asked, “But where is everybody?” Scientists today call that riddle Fermi’s Paradox. Now a new paper by NASA scientists explores one possible answer to the paradox. The answer may be what’s called the Great Filter.

Economist Robin Hanson first proposed the Great Filter, in the late 1990s. It’s the idea of that – even if life forms abundantly in our Milky Way galaxy – each extraterrestrial civilization ultimately faces some barrier to its own survival. The barrier might come from without (for example, an asteroid striking a planet, and wiping out all life forms). Or it might come from within (for example, all-out nuclear war).

Hanson proposed that a Great Filter might be at work within our Milky Way galaxy. He argued – from what we can see here on Earth – life expands to fill every niche. And so, he argued, we should see signs of intelligent life beyond Earth in nearby star systems, perhaps even in our solar system. But we don’t see this.

Is humanity facing a Great Filter?

The authors of the new paper take Hanson’s idea further. They explore the idea that humanity may now be facing a Great Filter. The authors wrote:

We postulate that an existential disaster may lay in wait as our society advances exponentially towards space exploration, acting as the Great Filter: a phenomenon that wipes out civilizations before they can encounter each other … In this article, we propose several possible scenarios, including anthropogenic and natural hazards, both of which can be prevented with reforms in individual, institutional and intrinsic behaviors. We also take into account multiple calamity candidates: nuclear warfare, pathogens and pandemics, artificial intelligence, meteorite impacts, and climate change. 

And they offer solutions, beginning with, as they say:

… a necessary period of introspection, followed by appropriate refinements to properly approach our predicament, and addressing the challenges and methods in which we may be able to mitigate risk to mankind and the nearly 9 million other species on Earth.

In a sense, the authors of the new paper – including lead author Jonathan H. Jiang of NASA’s Jet Propulsion Laboratory in Pasadena, California – are engaging in a “necessary period of introspection” by the act of writing their paper.

And, with their paper, they’re laying out the challenges we’re facing and methods of addressing them.

We’ve already survived some ‘filters’

The scientists point to life’s resilience. Life on Earth has already survived a number of filters in the form of mass extinction events. The Permian-Triassic extinction – aka the Great Dying – occurred 250 million years ago and nearly ended all life on the planet. This extinction event wiped out about 96% of marine life and 70% of land species. The exact cause of the Great Dying is still a matter of study, but some scientists have said it was a combination of warming temperatures and decreasing oxygen.

But these previous filters, or extinction events, have been natural, arising from the evolution of our planet and solar system, including volcanic eruptions and asteroid impacts

A Great Filter of our own making

But now, clearly, humanity may be facing a Great Filter of our own making, and one that other intelligent civilizations in the galaxy have faced … and failed to withstand. Perhaps it’s no surprise that the technological advancements humans have achieved might ultimately lead to our undoing. Perhaps that’s nature’s way. As the new paper said:

It seems as though nearly every great discovery or invention, while pushing back the borders of our technological ignorance, is all too quickly and easily turned to destructive ends. Examples such as splitting the atom, biomedical innovations and resource extraction and consumption come to mind with disconcerting swiftness. Still, some have suggested artificial intelligence (AI) as yet another factor, which, pending substantial technical hurdles, may yet have its chance to prove friend or foe.

Here’s a look at some of the issues that might compose Earth’s Great Filter.

Unchecked population growth

One of the factors Earth faces, according to the paper, is unchecked population growth. Earth just passed a milestone on November 15, 2022, when it reached 8 billion human inhabitants. The paper said with our current population figures, Earth has experienced:

… an exponential rise from about 1.6 billion [people] at the start of the 20th century.

Technological advancements in farming, energy production and distribution have made such a large population possible on Earth. But, as the paper said, these advancements cannot:

… indefinitely offset the multifaceted stresses imposed by an ever-escalating population.

When will Earth’s human population reach its peak size? Some projections report that education in developing nations might allow Earth’s population to peak at 10 billion in the 2060s. But, of course, no one really knows.

Nuclear war

While warfare has long been a factor of life on Earth, only in the past century has humanity had a weapon that could destroy all nations, not just those participating in a nuclear war. The scientists said the greater the number of democracies in the world, the better our chances for avoiding nuclear war. The scientist also saw other encouraging signs, including:

Peace agreements in the historically troubled Middle East, a vast reduction in nuclear warheads since the height of the Cold War and a wide coalition of nations rallying their support for the besieged in Eastern Europe.

Pathogens and pandemics

The threat of illness and pandemics continues to grow simply because our world is so interconnected. Spreading diseases have a much easier time in our global society. But on the positive side, advancements in medicine have also given us an edge. The scientists said that having current and reliable data is crucial:

… in predicting how future pandemics will spread, how deadly they will be and how quickly and effectively we will be able to leverage our knowledge of the life sciences to counter this manifestation of the Great Filter.

Artificial intelligence

While true artificial intelligence as a separate sentient being is not yet reality, the authors of the paper urge a proactive plan to peacefully share Earth. They project that computer sophistication will one day rival that of the human mind. The scientists said:

As for whether AI would be benign or otherwise, self-imposing a Great Filter of our own invention, that will depend on the evolving nature and disposition of Earth’s first high-tech species.

Asteroid and comet impacts

Here’s an extinction event from the past that could still spell our doom in the future. While large impacts are exceedingly rare, there is, as the scientists said:

… a non-zero percentage [of asteroids or comets] which are large enough to survive passage through the atmosphere and, impacting the surface, cause catastrophic destruction to our sensitive biosphere.

The odds of a mass extinction level event in the coming years is vanishingly small. But, over time periods extending into the very distant future, the odds increase toward 100%. Meanwhile, with projects such as the DART mission, and given enough lead time, humanity has a way of defending itself.

Climate change

Climate change has become one of the most studied threats to life on Earth. Because the threats from climate change happen on a slower time scale than, say, the time it takes to launch a nuclear weapon, the efforts to curb these effects have not been as rapid as they could have been. The scientists said:

The major impediment to taking more decisive actions, however, are the challenges imposed by transitioning to non-carbon-based energy sources such as solar, wind, nuclear power. Here again, rapidly advancing technologies in areas such as modularized nuclear power plants and carbon capture and sequestration (CCS) are among the best hopes for avoiding slow-motion ensnarement by this lulling but lethal Great Filter.

Avoiding the Great Filter

So you see there’s not just one possible Great Filter for Earth, but many. Any one of them could be our downfall. These scientists are suggesting something that sounds simple on its face, but is (apparently) hard to do. That is, in order to avoid the Great Filter, humans must work together and recognize the big picture. As the paper said:

History has shown that intraspecies competition and, more importantly, collaboration, has led us toward the highest peaks of invention. And yet, we prolong notions that seem to be the antithesis of long-term sustainable growth. Racism, genocide, inequity, sabotage … the list sprawls.

Meanwhile, we continue to look outward, peering at the dark depths between the stars, hoping for a sign that we aren’t alone in the universe. Ultimately, our quest to find life beyond Earth is part of trying to understand life on our planet and where we fit in. As Carl Sagan said:

In the deepest sense, the search for extraterrestrial intelligence is a search for ourselves.

Bottom line: Scientists say the reason we haven’t found intelligent civilizations in the galaxy is that they may not have survived the Great Filter. And they say we may be facing down our own Great Filter.

Source: https://arxiv.org/ftp/arxiv/papers/2210/2210.10582.pdf

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We are a funny bunch! As was said just a couple of paragraphs ago we humans must work together and recognise the big picture. But we do not!

Why do we not do that?

I wish I knew the answer to that conundrum! Nevertheless, I hope you enjoyed the article.