"I am the Way, the Truth, and the Life"

Father God, thank you for the love of the truth you have given me. Please bless me with the wisdom, knowledge and discernment needed to always present the truth in an attitude of grace and love. Use this blog and Northwoods Ministries for your glory. Help us all to read and to study Your Word without preconceived notions, but rather, let scripture interpret scripture in the presence of the Holy Spirit. All praise to our Lord and Saviour Jesus Christ.

Please note: All my writings and comments appear in bold italics in this colour
Showing posts with label volcanoes. Show all posts
Showing posts with label volcanoes. Show all posts

Monday, April 12, 2021

Think 2020 was Bad? Historians say 536 was Worst Year Ever to be Alive

..
ByMark Puleo, Accuweather.com

A partial solar eclipse is viewed from Europe on March 20, 2015, via the European Space Agency's
sun-watching Proba-2 satellite. File Photo courtesy European Space Agency

April 12 -- You wake up to a dark, dreary, glum-feeling, Monday-type of morning. For the 547th consecutive day. Just 18 months prior, you were a hard-working farmer gearing up for another bountiful crop season.

But then the skies went dark. From early 536 to 537, they stayed dark.

Across much of eastern Europe and throughout Asia, spring turned into summer and fall gave way to winter without a day of sunshine. Like a blackout curtain over the sun, millions of people across the world's most populated countries squinted through dim conditions, breathing in chokingly thick air and losing nearly every crop they were relying on to harvest.

This isn't the plot of a dystopian TV drama or a fantastical "docu-fiction" production. This was a harsh reality for the millions of people that lived through that literally dark time -- or, as some historians have declared, the very worst year ever to be alive.

"For the sun gave forth its light without brightness, like the moon, during this whole year, and it seemed exceedingly like the sun in eclipse, for the beams it shed were not clear nor such as it is accustomed to shed," was the grim account Procopius, a prominent scholar who became the principal Byzantine historian of the 6th century, gave in History of the Wars.

"And from the time when this thing happened men were free neither from war nor pestilence nor any other thing leading to death."

An eerie mixture of fog and smoke casts an orange glow over downtown San Francisco, Calif.,
at 11:30 a.m., on September 9, 2020. File Photo by Terry Schmitt/UPI

Some 1,500 years later, Harvard University medieval historian Michael McCormick has reached a similarly grim conclusion about not just 536, but the dreadful decade that followed that terrible year.

For people living across Europe in 536, "It was the beginning of one of the worst periods to be alive, if not the worst year," McCormick said recently.

As McCormick told AccuWeather, it was all set off by rapid, drastic climate change.

In the spring of 536, a volcanic eruption triggered the Late Antique Little Ice Age (LALIA), McCormick told AccuWeather. And its ramifications, on top of ensuing eruptions in 540 and 547, were devastating.

"Aerosols for the big volcanic eruptions blocked solar radiation, dropping the solar heating of the Earth's surface," he told AccuWeather in an email, adding that climate analysis from Cambridge University in the U.K. done on tree rings show the average summer temperature "dropped by between 1.5 degrees and 2.5 degrees Celsius across Eurasia."

That's up to 36 degrees Fahrenheit cooler due to the heavy smog left behind after the eruption. The skies remained dimmed for up to 18 months, multiple historical witnesses recounted, triggering the dark year of turmoil that earned 536 its dubious distinction.

Weather patterns were severely affected by the blocked sunlight, leading to summer snowfall in China and the lowest temperature levels in more than 2,300 years, according to recorded historical accounts and climate reconstruction analysis.

In the Middle East, China and Europe, a dense fog was an inescapable daily nightmare while widespread agricultural challenges in Ireland resulted in a "failure of bread from the years 536-539," according to The Gaelic Irish Annals.

Much of scientists' understanding of the impacts from the Iceland volcano were found during the Historical Ice Core Project, a partnership between the University of Maine and Harvard University that McCormick co-led along with Professor Paul Mayewski of the Climate Change Institute. Using ice core samples from Iceland, the team mapped out an archaeological timeline to pinpoint when and where the initial volcanic eruption must have occurred in Iceland.

Its impacts were widespread and deadly.

"Ancient eyewitnesses report that the sun stopped shining brightly for 14-18 months," McCormick said. "The result was several years of failed harvests, famines, causing migrations and turbulence across Eurasia."

While the 6th century outbreak of the bubonic plague may be less remembered than the 14th-century reoccurrence of the disease, which came to be known as the "Black Death," the 6th-century pandemic was still responsible for destroying at least one-third of the eastern Roman Empire population, leading to its collapse.

Dubbed the Justinian Pandemic or the Plague of Justinian, the disease spread throughout Roman Egypt before infecting the rest of the world over the ensuing 200 years. McCormick said ancient DNA has shown the disease-causing pathogen to beYersinia pestis, bubonic plague, a disease of rats and other rodents that spilled over into human populations.

In the wake of the climate-altering volcanic eruptions and darkened year of 536, McCormick said the situation was fatally ripe for the plague to wreak havoc.

Although he said there has yet to be a precise relation established between the abrupt onset of the LALIA and the Justinianic Pandemic, McCormick said that "it seems likely that, for instance, the food shortages caused by the sudden cooling in many parts of Eurasia weakened the populations and made them more susceptible to the pathogen." The famines almost certainly led to mass migrations of people as well, he said, likely carrying the disease with them.

Compared to the modern-day hardships dealt by COVID-19, the differences are shocking.

"You have to take the period as a whole," he said. "[The year] 536 was just the beginning of a very tough time. The plague pandemic on top of the abrupt cooling must have been very difficult."

"Today COVID-19 is terrible, but compare the death rate for bubonic plague," he continued, pointing to the 1.8 case-fatality ratio in the U.S. compared to the 40 to 60 mortality rate for untreated bubonic plague.

A view of the Fuego volcano as it erupts, seen from El Rodeo, Escuintla, Guatemala, on November 19, 2018.
File Photo by Esteban Biba/EPA-EFE

So just how massive must those volcanic eruptions have been?

Mayewski, a glaciologist from the University of Maine, was also heavily involved in the Historical Ice Core Project and he told Science Mag that his team was able to analyze 2,000 years worth of historic, natural disasters taken from a 72-meter drilling in Iceland that presented the researchers with a historical timeline of element levels.

Using a laser to carve 120-micron slivers of ice from the core, scientists could analyze the element spikes and drops of different moments in history to line them up with disasters that helped better piece together our understanding of what shaped the world we live in today.

In the ice sample from the spring of 536, graduate student Laura Hartman and volcanologist Andrei Kurbatov found microscopic particles of volcanic glass, which closely matched glass particles previously found in lakes around Europe and an ice core sample taken from Greenland.

Kurbatov concluded that the perfectly disastrous mix of winds and weather in 536 must have guided the plume across Europe and into Asia, casting a chilly pall as the volcanic fog "rolled through."

Other researchers also believe that the Icelandic 536 eruption emitted thick ash that spread across the Northern Hemisphere, pumping large quantities of sulfate into the atmosphere, according to a 2015 article in Smithsonian Magazine.

On top of that eruption, other studies conducted recently have suggested that there could have been more than one volcano responsible for that time period's tragedies.

The other notable blast, researchers says, is believed to have been one of the strongest eruptions of the last 10,000 years, likely only comparable to the 1815 eruption of Mount Tambora.

That Mount Tambora eruption also led to a similarly bleak year, as much of 1816 was also shrouded in darkness, leading to unprecedented low temperatures and hundreds of thousands of deaths from the eruption and starvation due to that season's failed crops. That time period became known as "The Year Without a Summer." In the United States, snow fell in June in New York and Maine while heavy frosts and ice storms occurred as late as July in the region.

Mount St. Helens emits a plume of steam and ash from an area of new crevasses in the crater glacier
south of the 1980-86 lava dome on October 1, 2004. File Photo by Scott Taylor/U.S. Navy/UPI

In the 6th century, the other history-altering volcano erupted about 5,000 miles away from Iceland in Central America, with a volcanic blast more than a hundred times stronger than the 1980 eruption of Mount St. Helens, Researcher Robert Dull told National Geographic.

A team of researchers published a study in the Quaternary Science Reviews placing the location of the eruption in central El Salvador from the dormant Ilopango. Today, a lake the size of 28 square miles sits in the volcanic caldera left behind.

"This is the largest eruption in Central America that human beings have ever witnessed," Dull, a geologist at California Lutheran University, told the publication. "The importance of the event is even greater, both how the Maya overcame it and how it impacted what happened next."

The pair of cataclysmic eruptions are believed to have combined to trigger the following decade's years of disease, famine and tragedy.

Using historical dating techniques such as tree ring analysis and stable carbon isotope records, the researchers presented a model to depict just how brutal life was for people alive at that time.

The dust veil, they say, reduced normal levels of solar radiation and thus ruined years of crop harvests, and "contributed to remarkably simultaneous outbreaks of famine," leaving humans with a long-term lack of vitamin D, which diminished health and quality of life in those years of darkness.

McCormick said that as more natural climate records and LALIA reconstructions are better understood, scientists will be able to be better understand how that dust veil drastically changed the weather in different parts of the Northern Hemisphere.

"The Arabian peninsula for instance, might have become a little less dry, while the effect seems more dramatic and negative north of the Mediterranean," he said. "So far, most of the natural climate records from which the LALIA has been reconstructed come from Eurasia and North America, so more northerly latitudes."

Even if it may sound hard to believe given the past 100 years of multiple World Wars and numerous, devastating pandemics, McCormick told History.com that the horrifying period of history was not blown out of proportion by witness accounts.

"It was a pretty drastic change it happened overnight," he said. "The ancient witnesses really were onto something. They were not being hysterical or imagining the end of the world."


Sunday, May 17, 2020

The Sun has Entered a ‘Lockdown’ Period, Which Could Cause Freezing Weather, Famine

It was at least 2016 when I began blogging about sunspot activity and its effect on the earth's temperature. The expected solar minimum appeared to have begun last February, at least. This report confirms that and that it has continued into this year. 

By Chris Pollard, The Sun

Our sun has gone into lockdown, which could cause freezing weather, earthquakes and famine, scientists say.

The sun is currently in a period of “solar minimum,” meaning activity, (sunspots) on its surface has fallen dramatically.

Experts believe we are about to enter the deepest period of sunshine “recession” ever recorded as sunspots have virtually disappeared.

Astronomer Dr. Tony Phillips said: “Solar Minimum is underway and it’s a deep one.”

“Sunspot counts suggest it is one of the deepest of the past century. The sun’s magnetic field has become weak, allowing extra cosmic rays into the solar system.”

“Excess cosmic rays pose a health hazard to astronauts and polar air travelers, affect the electro-chemistry of Earth’s upper atmosphere and may help trigger lightning.”

Getty Images

NASA scientists fear it could be a repeat of the Dalton Minimum, which happened between 1790 and 1830 — leading to periods of brutal cold, crop loss, famine and powerful volcanic eruptions.

Temperatures plummeted by up to 2 degrees Celsius (3.6 degrees Fahrenheit) over 20 years, devastating the world’s food production.

On April 10, 1815, the second-largest volcanic eruption in 2,000 years happened at Mount Tambora in Indonesia, killing at least 71,000 people.

It also led to the so-called Year Without a Summer in 1816 — also nicknamed “eighteen hundred and froze to death” — when there was snow in July.

So far this year, the sun has been “blank” with no sunspots 76 percent of the time, a rate surpassed only once before in the Space Age — last year, when it was 77 percent blank.

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Wednesday, July 24, 2019

Recent Warming Over the Past 100 Years is Not Part of a Natural Process, Studies Find

As this blog is dedicated to finding the truth, I often present both sides of an argument. This is an interesting argument for anthropogenic climate change. I have always proposed that man is contributing to global warming but not to the degree that climate change alarmists are hysterically claiming. I hope to hear some counter-arguments to this article.

Periods of warming and cooling were regional and not global

Nicole Mortillaro · CBC News 

Heat waves, droughts, floods and other climatic events are poised to increase as a result of global climate change.
Several new studies have concluded that the warming over the past 100 years has been truly widespread,
particularly when compared to climate events over the past 2,000 years. (Arnd Wiegmann/Reuters)

Earth's natural cycles can't account for the recent warming seen over the past 100 years, new research suggests.

In one of three new studies published in the journals Nature and Nature Geoscience, researchers found that previous periods of climate change such as the Little Ice Age and the Medieval Warming Period were regional and not a global phenomenon.

In contrast, the warming that has occurred over the past century has been far-reaching and global in nature.

"In this paper, what we do is look at climate over the past 2,000 years — and traditionally the understanding of climate over this period is that there were globally coherent periods of climate variability," said Nathan Steiger, co-author of the paper and an associate researcher at the Lamont-Doherty Earth Observatory at Columbia University. "But what we show is that these periods are not globally coherent, as previously thought."

In order to obtain a robust sampling of data around the world, the researchers used 700 records obtained from trees, ice, coral, sediment and more.  

In the case of the Little Ice Age, the researchers found that different parts of the planet experienced changes at different times.

The central and eastern Pacific regions experienced their coldest temperatures in 2,000 years during the 15th century. But in northwestern Europe and southeastern North America, the coldest temperatures occurred during the 17th century. For everywhere else, it occurred during the 19th century. 

The cold period that became known as the Little Ice Age in Europe and North America was not a global phenomenon, researchers say. The coldest 50-year period of the last millennium occurred at different times in different regions.
(University of Bern)

In contrast, the warming we are seeing today spans 98 per cent of the planet.

Their study only went as far as the year 2000, but nine of the 10 warmest years on record have occurred since then, with the past five years being the warmest.

Those who question or disagree with scientific evidence pointing to anthropogenic, or human-caused, climate change often cite Earth's natural cycles as one of the reasons for the planet's recent warming. The Little Ice Age is most often presented as evidence of part of this natural cycle.

But, Steiger said, "internal variability [doesn't] explain the coherence that we see for the contemporary warming."

Agreement

In a second study, researchers examined Earth's rate of surface warming — the global mean temperature — and its drivers. They found that the rate of warming over periods of at least 20 years was fastest during the late 20th century.

This map illustrates the location of climate data sets which were used to reconstruct global temperatures
over the last 2,000 years. (NASA, edited by Raphael Neukom)

"We find that at pre-industrial times … major volcanic eruptions were the major drivers of temperature fluctuations," said co-author Raphael Neukom, a scientist at the Oeschger Centre for Climate Change Research at the University of Bern. But external forces such as variations in the sun's output did not have "a significant influence" on temperatures.

The sun is also often used by climate skeptics as an external driving force responsible for climate change.

The third paper also concluded that volcanoes played a role in climatic upheaval in the past.

It's this agreement between the three separate studies that the teams of researchers believe is an important indicator of the climate state the planet is currently experiencing.

Modern global warming is a global phenomenon, the authors of the studies conclude. The warmest 50-year period
of the last 2,000 years occurred on more than 98 per cent of Earth’s surface in the 20th century. (University of Bern)

"The basic conclusion is that what's happening today is anomalous, and we understand why it's anomalous — it's not a mystery," said Gavin Schmidt, a climatologist and director of NASA's Goddard Institute for Space Studies, who was not involved with the study. 

But, he said, while the findings may not be entirely new, it's encouraging to have the new research to support other studies, and to offer it up to people who are "grasping at straws to avoid" dealing with climate change.

"This is really like a triple underlining of the fact that what's happening now is unusual in a multi-centennial context and maybe in a much larger context," Schmidt said. "And people have to deal with that."

Steiger said his team expected to find warming across the globe but were surprised at the extent.

"There's a lot of evidence for humans causing the contemporary warming. From our perspective, what we were most interested in is the past explaining the past, and how we understand the past, and then contrast it with the [present]," Steiger said. "There's so much evidence out there anyway. We didn't need to put the nail in the coffin."


Wednesday, February 24, 2016

The Price of the Stupidity of Anthropogenic Global Warming Nuts

Ontario Premier Says Cap-and-Trade Plan to Increase Gas Prices by 4.3 Cents a Litre

For my American readers 4.3 centiliters = about 16 cents per US gallon

'The cost of doing nothing is much, much higher than the cost of going forward,' premier says

The question is, how much higher? Kathleen Wynne's statement is straight bulls--t! She certainly has no idea what the cost of doing nothing is. If she did know, she would realize that she is wasting billions of dollars for absolutely no return. And it's not her money she's throwing away, it's the people of Ontario's money she's burning.

See below for quick and dirty Climate Change Summary

The Canadian Press 
Details of Ontario government's cap-and-trade plan are coming in Thursday's budget. (Darryl Dyck/Canadian Press)

Gas prices in Ontario will rise about 4.3 cents a litre and residential natural gas bills will go up about $5 a month under the Liberal government's cap-and-trade plan.

"The cost of doing nothing is much, much higher than the cost of going forward and reducing greenhouse gas emissions," she said.

However, revenue from the cap-and-trade auction set for next year will be used to "protect" consumers from an electricity rate hike and could even lead to rates going down, Wynne said.

It is scheduled to take effect in January and the government expects to raise about $1.3 billion in its first full year of operation, money that will be devoted to lowering greenhouse gas emissions.

Finance Minister Charles Sousa denied Wednesday that cap-and-trade revenue would be used to lower the $7.5-billion deficit, which the Liberals have promised to eliminate by 2017-18.

"It is not about reducing the deficit, it's about reinvesting to ensure that we meet the targets through the Western Climate Initiative," he said.

Sure. I believe that. I have a tropical island in Labrador for sale, too.

However, the revenues still have to show up on the government's balance sheet.

Climate Change
- Global warming is a real phenomena - the planet is warming.
- It has almost nothing to do with mankind.
  - Man is responsible for only 3-4% of the CO2 that enters the atmosphere
  - 96-97% is naturally formed and released from plants, the oceans, and from the ground
  - Canada emits about 565 megatons of anthropogenic CO2 emissions per year
  - Global anthropogenic emissions = 36.9 billion tons. Canada's contribution = 2%
  - Canada's contribution to global total CO2 emissions = 0.07%
  - A reduction of 33% of Canada's CO2 emissions amounts to 0.023% of total global emissions
  - A reduction of 0.023% of the total CO2 emissions will not produce any measurable reduction in     the global temperature
 Conclusion - there is no benefit whatsoever in Ontario, or Canada spending billions of dollars on      this great quasi-scientific hoax

More facts:
 - The global temperature has risen on 0.5 degrees C since 1880. 
 - Climatological patterns indicate little or no global temperature rise until after about 2030
 - They also indicate about 0.5-0.75 degree temperature rise in the 21st century
 - In 1990 the IPCC predicted a 1.0 deg rise in temperature by 2025; to date it has risen 0.2 deg
 - For the IPCC prediction to come true the temperature would have to rise 0.8 deg in the next 9        years, more than the rise in the last 135 years
 - Currently, but for El Nino, the temperature has shown very little inclination to rise in past
   decade or more.
 - one good sized volcano could eliminate the effects of several years of global emissions reductions
 - Professor Murry Salby has shown that temperature increases follow CO2 increases, historically      by about 800 years
 - Most scientific research supports anthropogenic global warming because those with an open
   mind on the subject are frozen out of research funds

Carbon dioxide (CO2) emissions from fossil fuels and industry increased by 0.6% in 2014, with a total of 9.8±0.5 GtC (billion tonnes of carbon) (35.9 GtCO2) emitted to the atmosphere, 60% above 1990 emissions (the Kyoto Protocol reference year). Emissions are projected to decline by -0.6% in 2015 (range -1.6% to +0.5%).


Friday, April 24, 2015

The Staggering After-Effects of Volcanoes

Two hundred years ago the most powerful eruption in modern history made itself felt around the world. It could happen again at almost any time

IF ALIENS had been watching the Earth during 1815 the chances are they would not have noticed the cannon fire of Waterloo, let alone the final decisions of the Congress of Vienna or the birth of Otto von Bismarck. Such things loom larger in history books than they do in astronomical observations. What they might have noticed instead was that, as the year went on, the planet in their telescopes began to reflect a little more sunlight. And if their eyes or instruments had been sensitive to the infrared, as well as to visible light, the curious aliens would have noticed that as the planet brightened, its surface cooled.


Mount Tambora (pictured), a volcano on the Indonesian island of Sumbawa, was once similar in stature to Mont Blanc or Mount Rainier. But in April 1815 it blew its top off in spectacular fashion. On the 10th and 11th it sent molten rock more than 40 kilometres into the sky in the most powerful eruption of the past 500 years. The umbrella of ash spread out over a million square kilometres; in its shadow day was as night. Billions of tonnes of dust, gas, rock and ash scoured the mountain’s flanks in pyroclastic flows, hitting the surrounding sea hard enough to set off deadly tsunamis; the wave that hit eastern Java, 500km away, two hours later was still two metres high when it did so. The dying mountain’s roar was heard 2,000km away. Ships saw floating islands of pumice in the surrounding seas for years.

In his book “Eruptions that Shook the World”, Clive Oppenheimer, a volcanologist at Cambridge University, puts the number killed by the ash flows, the tsunamis and the starvation that followed them in Indonesia at 60,000-120,000. That alone would make Tambora’s eruption the deadliest on record. But the eruption did not restrict its impact to the areas pummelled by waves and smothered by ash.

When the sulphur hits the stratosphere
The year after the eruption clothes froze to washing lines in the New England summer and glaciers surged down Alpine valleys at an alarming rate. Countless thousands starved in China’s Yunnan province and typhus spread across Europe. Grain was in such short supply in Britain that the Corn Laws were suspended and a poetic coterie succumbing to cabin fever on the shores of Lake Geneva dreamed up nightmares that would haunt the imagination for centuries to come. And no one knew that the common cause of all these things was a ruined mountain in a far-off sea.

While lesser eruptions since then have had measurable effects on the climate across the planet, none has been large enough to disrupt lives to anything like the same worldwide extent. It may be that no eruption ever does so again. But if that turns out to be the case, it will be because the human world has changed, not because volcanoes have. The future will undoubtedly see eruptions as large as Tambora, and a good bit larger still.

Mixed in with the 30 cubic kilometres or more of rock spewed out from Tambora’s crater were more than 50m tonnes of sulphur dioxide, a large fraction of which rose up with the ash cloud into the stratosphere. While most of the ash fell back quite quickly, the sulphur dioxide stayed up and spread both around the equator and towards the poles. Over the following months it oxidised to form sulphate ions, which developed into tiny particles that reflected away some of the light coming from the sun. Because less sunlight was reaching the surface, the Earth began to cool down.

The sulphate particles were small enough to stay aloft for many months, so the cooling continued into the following year. By the summer of 1816 the world was on average about 1ºC cooler than it had been the year before—an average which hides much larger regional effects. Because the continents are quicker to cool than the heat-storing seas are, land temperatures dropped almost twice as much as the global average.

This cooling dried the planet out. A cooler surface meant less evaporation, which meant less water vapour in the lower atmosphere and thus less rain. Rainfall over the planet as a whole was down by between 3.6% and 4% in 1816.

If such numbers seem suspiciously accurate, considering that most of the world of 1816 was devoid of thermometers and rain gauges, it is because they come from recent computer modelling of the climate that seeks to mimic the conditions Tambora created. Like all modelling results, such numbers need caveats. These results, though, and similar ones from other models, can be accorded the credence that comes from having been proved right in similar situations.

The 1991 eruption of Mount Pinatubo in the Philippines was about a sixth as large as Tambora’s in terms of the volume of lava, rock and ash, and about a third as large in terms of sulphur emissions. Satellites showed that in the summer of 1992 the sulphur it had spewed into the atmosphere was reducing the amount of sunlight getting to the Earth’s surface by well over three watts per square metre; for comparison, the warming effect of the 40% increase in the atmosphere’s carbon-dioxide level since the age of Tambora is just two watts per square metre.

With the energy absorbed by the Earth reduced, temperatures fell by around half a degree in the year after Pinatubo; rainfall dropped off significantly, too. Computer models run after the eruption but before these effects became visible captured the effects reasonably accurately (though they had a tendency to overestimate the cooling). This is one of the best reasons for thinking that such models capture the workings of the climate quite well.

The historical record largely bears out what the models suggest Tambora did. Across Europe the summer of 1816 was cold and wet, and the harvest terrible. The effects were most notable around the Alps; in Saint Gallen, in Switzerland, the price of grain more than quadrupled between 1815 and 1817. Starving migrants took to the roads in their hundreds of thousands; mortality rates climbed due to starvation and disease. Death also stalked Yunnan, where Tambora’s cooling shut down the monsoon and cold days in summer killed the rice harvest for three years running.

Monsoons, which are driven by the difference in temperature between hot land and cooler sea, are particularly vulnerable to the excessive cooling of the land that volcanoes bring. Their weakening can have effects on more than crops. In his excellent account of the global impacts of the 1815 eruption, “Tambora”, Gillen D’Arcy Wood of the University of Illinois draws on the writings of James Jameson, a doctor in Calcutta, who held the lack of fresh water which followed the failure of the 1816 monsoon responsible for the cholera epidemic that swept through Bengal the following year.

Was this all down to one volcano? Not entirely; nothing in the climate has a single cause. The global climate shifts in various ways on a number of timescales, and its particular disposition at the time a volcano strikes will influence the way the volcano’s effects play out. The fact that an El Niño event—a swing in the global climate driven by the slopping of warm water east across the Pacific towards South America—was getting under way at the time of the Pinatubo eruption in 1991 undoubtedly modulated its climatic effects.

Alan Robock, an expert on links between volcanoes and climate at Rutgers University, notes a particularly intriguing initial condition that could have influenced the world’s response to Tambora. There had been another large eruption—larger than Pinatubo—just six years before. No one knows where this 1809 eruption was, but its signature can clearly be seen in the Greenland and Antarctic ice sheets. The sulphur put into the stratosphere by volcanoes shows up quite clearly in the year-by-year records of what was going on in the atmosphere that climate scientists extract from polar ice cores. These records make it possible to give dates to large eruptions in the past even if no one recorded the event at the time (see chart).

Cooling Mr Knightley
The ice cores show that the 1809 eruption was easily large enough to have had effects on the climate, and there is some evidence of cooling in subsequent years. In Jane Austen’s “Emma”, which according to Euan Nisbet, a geologist at Royal Holloway, London, seems to follow the weather of 1814, spring is remarkably late, with apple trees blossoming in the middle of June. Pre-cooling along these lines might have made some of the subsequent effects of Tambora more marked, while possibly lessening others. Some researchers believe that a number of eruptions close together might be able to trigger a climate downturn that lasts considerably longer than the few years models normally predict; a set of eruptions in the late 13th century, this idea suggests, may have been part of the reason for the subsequent global cooling known as the “little ice age”.

If the prior state of the climate system constrains an eruption’s effects, so does that of the human world. The damage done to Europe by the preceding quarter-century of revolutionary and Napoleonic war could have left it particularly vulnerable to 1816’s “year without a summer”. The situation in Yunnan would hardly have been as dire had the population not been hugely expanded by the Qing dynasty’s encouragement of new settlers.

Similarly uncaptured in models, but even more fascinating to speculate about, are the after-effects of the Tambora downturn. In America, the spike in grain prices caused by Europe’s hunger drove a wave of farmers across the Appalachians to where the Ohio Valley was enjoying far more clement weather, with barges taking exports for Europe down the Mississippi in ever larger amounts. The collapse in the grain price when Europe’s harvest recovered contributed to the American economy’s first major depression.

The historian John Post, in a study of Tambora’s effects published in 1977, “The Last Great Subsistence Crisis in the Western World”, held that the volcano reshaped European politics. The disorder that sprang up in the bad weather from 1816 to 1818, and its subsequent repression, created a climate for authoritarian rule that held sway until the middle of the century. Mr D’Arcy Wood points out that it was in the aftermath of the Tambora famines that farmers in Yunnan started to plant opium poppies, the value of which as a cash crop offered some insurance against future failures of the grain harvest.

On top of such structural shifts, there are the personal stories. If Shelley, Byron and their romantic entourage had not been cooped up in a Swiss villa by incessant rain, would they have amused themselves by writing horror stories for each other—including John Polidori’s “The Vampyre”, the first novel to deal with seductive bloodsucking aristocrats, and Mary Shelley’s “Frankenstein”, which has shaped fears of scientific innovation from that day to this? If the summer frosts of “Eighteen-hundred-and-froze-to-death” had not driven Joseph Smith, a farmer, from Norwich, Vermont to Palmyra, New York, a place of vigorous religious enthusiasms, would his son Joseph junior still have been able to find the golden tablets to which the angel Moroni led him a few years later, or would the history of Mormonism have been very different?

Reappraising the risks
And what if this happened again? In general, volcanoes are not something people around the planet worry about very much. In lists of the 40 most expensive and most lethal natural disasters since 1970 recently produced by Swiss Re, a reinsurer, no eruptions feature at all. Models of the economic losses that large eruptions could cause are nothing like as well developed as those that the insurance industry uses for storms, floods or earthquakes, because such losses have mattered little. Some reinsurers, though, are beginning to put that right.

One worry is that even quite a small eruption could cost a lot if it hit a built-up part of a developed country. A study by Willis Re suggests that an eruption of Italy’s Vesuvius like the one which took place in 1631 (a much smaller event than that which destroyed Pompeii) could lead to an economic loss of well over €20 billion ($22 billion). Most of the property damage would be down to buildings collapsing under the weight of the ash that falls on them. The 1707 eruption of Mount Fuji produced only 2% as much ash as Tambora did, but Christina Magill of Macquarie University has calculated that if both eruptions were rerun today the urban area affected by heavy ashfall would be greater in the case of the Fuji eruption, since a great deal of that ash fell on what is now Tokyo.

The other reason for thinking more seriously about the damage done by volcanoes than recent history might seem to merit is that geology shows that they need to be assessed on much longer timescales. Today’s earthquakes, storms and floods—which make up the bulk of the natural disasters that insurers worry about—are doing more damage than yesterday’s did, but that is because they hit a world in which there is more valuable property that is likely to be insured, not because the disasters themselves are getting worse. The world’s worst storm or earthquake over a millennium is not all that much worse than the worst of a century. With volcanoes things get worse and worse the deeper in time you look.


In terms of direct effects, this is still not particularly worrying for most of the world’s population. Seven out of eight people on the planet live more than 100km from any potential eruptions. The “Global assessment report” (GAR) prepared for the UN summit on disaster-risk reduction held in Sendai, Japan, in March found that 95% of those at risk live in just seven countries. Five—Indonesia, the Philippines, Japan, Mexico and Guatemala—are on the circum-Pacific “ring of fire”, where clashing tectonic plates promote volcanism as well as earthquakes; the other two are Ethiopia and Italy. Two-thirds of the exposed population is in Indonesia.

The good news for the people who are at risk is that volcanoes—unlike earthquakes—provide a fair amount of warning before doing their thing. Scientists are increasingly good at looking out for such warnings, and most volcanoes that are close to lots of people are now pretty carefully monitored, though there are exceptions—the GAR points to the Michoacan-Guanajuato cinder-cone field in Mexico as a worrying one. Satellites and seismology are likely to pick up some signs of imminent eruptions from almost all the others. When the warnings seem to merit it, action can be taken. During the 2010 eruptions of Mount Merapi in Indonesia, the largest so far this century, 350,000 people were evacuated; as a result the death toll was only a few hundred. Evacuations kept the casualties at Pinatubo similarly small.

Unfortunately, predicting really large eruptions may be harder than predicting smaller ones like Merapi’s. Before a very large eruption you can expect a volcano to have been dormant for centuries; it takes time for the infernal forces to build up. But that does not mean that the first eruption of any long-dormant volcano will be catastrophic. It might have decades of throat-clearing to go through before it really lets rip. It might go back to sleep.

It was with this in mind that geologists embarked on a project to try to understand long-dormant Pinatubo’s history soon after it started to show signs of life in 1990. They found that the volcano seemed not to be the throat-clearing type, specialising instead in dramatic eruptions. Stephen Sparks of Bristol University says that understanding did a lot to make people feel justified in calling for a big evacuation.

Wherever the next big eruption happens, though, and whether predicted or not, it will, like Tambora, have global effects—and this time there will be a greater range of them. The climate is not the only global system now open to interruption.

All disasters now reverberate more than they would once have done. Disrupted supply chains transmitted the losses from the Japanese earthquake and tsunami in 2011 far and wide; tourism meant many more Swedes died in the Indian Ocean tsunami of 2004 than in any recent disaster on their home soil. Volcanoes, though, have the added ability to interfere with one of the ways in which such connections between far-off places are supported. As Eyjafjallajokull in Iceland showed five years ago, a quite small eruption’s ash cloud can have a big impact on air traffic if it is in an inconvenient place.

A really big eruption would shut down large swathes of airspace for a couple of weeks. If the airspace in question were hard to reroute around, that would have both direct impacts on the aviation industry—Eyjafjallajokull cost it about $1.7 billion—and indirect impacts on its users—valued at about twice the direct effects in that case. The losses would not be evenly spread or easily predictable. The Kenyan women who provide most of the labour for the country’s cut-flower industry suffered disproportionately when Eyjafjallajokull kept their blooms from market.

Another problem not seen when Tambora erupted would be damage to the ozone layer. The reactions by which chlorine destroys ozone are encouraged by the sulphate particles produced by volcanoes. In the 19th century that didn’t matter; there wasn’t any chlorine in the stratosphere. Now, thanks to human intervention, there is. Pinatubo saw global reductions in stratospheric ozone levels and a marked deepening of the “ozone hole” over Antarctica. If a Tambora-scale eruption were to happen in the near future it would have even stronger effects.

Warmer house on the prairie
And then there is the climate. If, like Tambora and Pinatubo, the volcano in question is close to the equator, Mr Robock says models predict an average cooling of perhaps 2ºC in the summer of the next year over much of North America, Europe, Asia and Africa, and decreased precipitation over the Amazon, southern Africa, India, South-East Asia and China. The models also make predictions about the weather in the intervening winter: the particles that cool the surface warm the stratosphere, which sets up a strong Arctic jet stream in a particular configuration. Expect a peculiarly warm winter in America’s prairies, western Europe and Central Asia, and a very cold one in eastern Canada, the Middle East and southern China.

It came from the depths! New islands created by volcanos
What these shifts would mean for agriculture is hard to say. The experience of Tambora suggests gloom, but this is not that world. For one thing, there is more agricultural land in more places. That gives more scope for bad harvests in some regions being offset by better ones elsewhere. Both models and studies of the years after Pinatubo suggest that, for various reasons, the world’s plant life as a whole gets more productive in the cooler, drier years that follow eruptions. It is also possible that some parts of a world stressed by global warming might experience sudden cooling as less of a problem than it was after Tambora—though the dryness might exacerbate their challenges.

Another reason for tempered optimism is that the world would know what was coming. Mr Robock and his colleagues would be spreading the word before the eruption was over. Futures markets would doubtless pay attention. So, one would hope, would governments.

The Red Cross/Red Crescent Climate Centre is dedicated both to providing warnings about the human impacts of climate shifts and extreme weather and to acting as an advocate for the people who suffer from them most. It spends a lot of time looking at how to get timely warnings of the likely regional effects of El Niño events to the countries and people they are most likely to harm, along with advice on how to limit the damage. Its head, Maarten van Alst, says he thinks that the climate impacts of a contemporary Tambora might be comparable to those of the big El Niño of 1997-98, which have been estimated at $36 billion, with 130m lives affected and 21,000 lives lost. And as with El Niños, forewarned would be forearmed. Mr van Alst and his colleague, Pablo Suarez, are trying to get a programme started that would study what actions should be given priority in that lull between the eruption and the cooling that would follow.

Such vigilance could come into its own well before there is another Tambora, since there is a way for considerably smaller eruptions to have climatic effects. Eruptions that take place well away from the equator cool only their own hemisphere, and these lopsided coolings have an impact on the intertropical convergence zone (ITCZ), a belt of rain around the equator. When the northern hemisphere cools the ITCZ shifts south, and that causes droughts in Africa’s Sahel. Of the Sahel’s four worst years of drought during the 20th century, three took place after northern-hemisphere eruptions: in the year after the Katmai eruption in Alaska, (1913) and the years of and after the El Chichón eruption in Mexico (1982 and 1983).

A repeat of the Tambora-sized blast at Taupo in New Zealand that took place 1,800 years ago, on the other hand, would push the ITCZ to the north and bring plentiful rain to the Sahel. The Amazon, though, which depends on the ITCZ staying put, would have a dry few years.

For a smallish volcano at high latitudes the effects on the ITCZ would probably swamp the local and regional effects. The direct damage a full-on Tambora would wreak in a populated region would be far greater, and its hard-to-foresee effects further afield, like those Eyjafjallajokull had on Kenya, might conceivably reinforce each other in calamitous ways, multiplying the economic damage. Still, in most cases it seems likely that here, too, the climate effects would trump the rest.

Pinatubo—picayune by comparison
But that does not mean their impacts would be as dire as those felt two centuries ago. As well as having a wider agricultural base and more foresight, the world today is more developed and better governed. A lot of the damage done in famines such as those of the 1810s comes from agricultural workers losing income at a time of price rises and governments doing nothing about it. Today the proportion of the population working the land is in most places much lower than it was then, and most governments both perceive a need to act during famines and have the capabilities to do so. There might well be a need for humanitarian interventions in the weird-climate years that followed; but such interventions do now happen.

That said, there is no reason to limit concern to Tambora-sized eruptions. There are much larger ones on offer. Some 26,500 years ago the Taupo volcano in New Zealand erupted with well over ten times the power it mustered 1,800 years ago. The odds of a really big eruption in any given year are tiny. Over a century, though, they mount up to maybe a few percent. So, though few of those alive today would perish in a rerun of Tambora, the chances of something much worse over their lifetimes cannot be ruled out. And though forewarning would help, there is no way of forestalling. Humans have huge powers over the planet. But they cannot stop a volcano whose time has come.