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Friday, 2 March 2012

10 AMAZING ONE-OF-A-KIND PLACES ON EARTH


Unique Places

Image Gallery: One-of-a-Kind Places on Earth
By Stephanie Pappas,
LiveScience.

Unique Places

From the hottest deserts to the iciest mountains (like the slopes of Mount Rainier, top picture), the world is a many-splendored place. But some spots are one-of-a-kind, with sights that can't be seen anywhere else on the planet. Here, we list some of these amazing places. Let's go exploring.

1. Where the Clouds Roll By

Where the Clouds Roll By
Credit: Mick Petroff, distributed via a Creative Commons license.

A rare tubular cloud formation occurs with regularity only one place on Earth: Northern Australia’s Gulf of Carpentaria. Here, ultra-long “roll clouds” form regularly in fall months. The phenomenon even has its own, geographically specific name, the Morning Glory cloud. Elsewhere in the world, roll clouds pop up only very occasionally, usually associated with sea winds or sometimes thunderstorm downdrafts. [See more images of curious clouds]

2. Where the Snow Is Like Knives

Where the Snow Is Like Knives
Credit: European Southern Observatory, distributed under a Creative Commons license.

These sharp snow formations make the white stuff look uninviting. They’re called penitentes, and although they can form at high altitudes anywhere, there’s no place better to see them than in the Dry Andes of Chile and Argentina, way up past 13,000 feet (about 4,000 meters).

Penitentes, named after pointy hats worn by people doing penance for their sins in Christian traditions, form in very cold, dry air, where the water in snow sublimates, or turns directly into vapour without melting first. Sublimation randomly occurs faster in some areas than in others; once uneven pock-marks form in the snow, they focus the sunlight, causing those areas to sublimate ever faster. Spiky penitentes get left behind, unmelted. The tallest penitentes can reach 12 feet (4 meters) high.

3. Where the Lakes Explode

Where the Lakes Explode
Credit: Jack Lockwood, 1986 (U.S. Geological Survey).

To see a lake that can kill you without you even dipping in a toe, visit Africa. In Cameroon and on the border of Rwanda and the Democratic Republic of the Congo are three deadly lakes: Nyos, Monoun and Kivu. All three are crater lakes that sit above volcanic earth. Magma below the surface releases carbon dioxide into the lakes, resulting in a deep, carbon dioxide-rich layer right above the lake bed.

In 1984, Lake Monoun abruptly exploded, releasing waves of water and a cloud of carbon dioxide. Thirty-seven people who lived near the lake asphyxiated in the CO2 cloud, though the cause of their deaths remained a mystery until two years later, when Lake Nyos let out its own burst of carbon dioxide. This time, 1,700 people died when the carbon dioxide, which is heavier than oxygen, displaced the breathable air in their villages.

Venting pipes have been installed in Lake Nyos and Lake Monoun in an attempt to release the carbon dioxide gas slowly and prevent future disasters. Kivu, which has never erupted, is not being vented, although local companies do extract dissolved methane from the lake to use for power generation.

4. Where Tsunamis Sweep Mountains

Where Tsunamis Sweep Mountains

In landlocked Bhutan, tsunamis are becoming a danger. Climate change is melting Himalayan glaciers, increasing the risk that glacial melt will break through ice dams and wipe out villages. Scientists call these flash floods, one of which killed dozens in 1994, “glacial-lake-outburst floods,” but in layman’s terms, they’re mountain tsunamis.

Bhutan is working to ease the danger by draining some high glacial lakes and shoring up their natural dams. Glacial lake outbursts can happen anywhere where glaciers are melting, but according to Bhutan’s government and the United Nations, 24 of the country’s 2,674 glacial lakes are at risk, making Bhutan the epicenter of this phenomenon. [Ice World: Gallery of Awe-Inspiring Glaciers]

5. Where the Rocks Walk

Where the Rocks Walk
Credit: Lukich, Shutterstock.

At Racetrack Playa in Death Valley, California, USA, it’s not horses or stock cars that make the rounds - it’s rocks. This pancake-flat dry lakebed is marked by tracks of large rocks that seem to have wandered from here to there under their own power.

In fact, the rocks (some of which weigh tens or hundreds of pounds) may require a perfect storm to get moving. According to lunar and planetary sciences researchers at NASA Goddard, wind pushes the rocks around. But for the wind to move huge boulders, there has to be little friction between the rock and the ground. Most likely, ice-encrusted rocks get inundated by melt-water from the hills above the playa, according to NASA researchers. When everything’s nice and slick, a stiff breeze kicks up, and whoosh, the rock is off.

6. Where Crystals Dwarf Humans

Where Crystals Dwarf Humans
Credit: Screenshot from "El Misterio De Los Cristales Gigantes," by Javier Trueba, produced
by Madrid Scientific Films.

Imagine an underground world where shimmering crystals crisscross caverns like a giant’s Tinkertoys. Mexico’s Cave of Crystals, buried below the Chihuahuan desert, is just that. Here, enormous crystals of selenite grow more than 30 feet (10 meters) long.

But this fantasy world is tough to withstand. The cave is nearly 1,000 feet (300 meters) below the surface, and a magma chamber below keeps the caverns heated to about 136 degrees Fahrenheit (58 degrees Celsius), with 99 percent humidity. Explorers must wear protective gear if they hope to survive in this crystal cave for more than a few minutes. [Amazing Caves: Pictures of the Earth’s Innards]

7. Where Lightning Strikes Way More Than Twice

Where Lightning Strikes Way More Than Twice
Credit: Thechemicalengineer, via a Creative Commons license.

Clear skies rarely prevail at the mouth of the Catatumbo River in Venezuela. Here, it storms on average every other night, as moist, warm winds meet the nearby ridges of the Andes and explode into electrifying tempests. The lightning is so consistent that sailors have been known to navigate by its glow, which even reportedly saved the city of Maracaibo from attack by the English pirate Sir Francis Drake in 1595. According to a 1597 poem, the lightning illuminated Drake’s fleet, alerting the city to the pirate’s presence.

8. Where the Coral Grows Like Mushrooms

Where the Coral Grows Like Mushrooms
Credit: © Conservation International/photo by Tim Werner.

The only place to find this strange structure is along the northeastern coast of Brazil, in and around Abrolhos Marine National Park. This is the only spot on Earth to see chapeiroes, isolated coral columns that grow on the seafloor and have a mushroom-like structure. Chapeiroes come in different shapes and sizes, but the giant and mature chapeiroes of the Abrolhos Bank can reach more than 65 feet (20 meters) tall and 165 feet (50 meters) in diameter at their tops. According to Conservation International, an environmental group that works in the region, climate change threatens these unique reefs, so researchers are working to understand how the coral responds to changing conditions.

9. Where Tectonic Plates Meet

Where Tectonic Plates Meet
Credit: Andrew Frassetto.

Deep in the ocean, underwater mountains form as tectonic plates spread apart, with the boundary between these spreading plates forming a mid-ocean ridge as molten rock from below rises up to fill in the gap. To see a mid-ocean ridge with your own eyes, though, travel to Iceland, the only place where the mid-Atlantic ridge runs on land. This geologically active spot, also known as the Reykjanes Ridge, marks a rather fuzzy boundary between the North American and Eurasian tectonic plates. Because of unusually active volcanism at the ridge below Iceland, the area is like a blister on the top of this gash, oozing (and sometimes erupting) lava to the surface, which hardens into new crust.

10. Where the Life Is Very Old

Where the Life Is Very Old

To get a sense of how life on Earth used to be, visit Shark Bay, Australia, one of the very few places on the planet where you can see living stromatolites. These structures are rounded towers of sediment built over thousands of years by cyanobacteria, or blue-green algae. The stromatolites at Shark Bay are a few thousand years old, but they’re nearly identical to the life that thrived on Earth 3.5 billion years ago, when oxygen made up just 1 percent of the atmosphere. Though they’re found in a few extra-salty bodies of water around the world, stromatolites are at their most diverse and most abundant at Shark Bay.

[Source: LiveScience.]


SPECTACULAR DOLPHIN STAMPEDE CAPTURED ON VIDEO


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This is unusual. It might have happened sometime, somewhere before but it's still unusual. That's because we know that the species most associated with stampede behaviour include cattle, elephants, blue wildebeests, walrusess, wild horses, rhinoceros, and of course humans. But dolphins? Watch the video, which has been on the internet for a week. Just don't say "Armageddon"!

Spectacular 'Dolphin Stampede' footage stirs an array of emotions
By: Pete Thomas,
GrindTV.com, 29 February 2012.

A video (shown below) titled "Dana Point Dolphin Stampede," showing perhaps 2,000 common dolphins in a frenetic charge alongside a Southern California whale-watching boat, is stirring emotions ranging from awe to dismay as it gets passed around on the Internet.

Source: GrindTV.com and YouTube

The spectacle, filmed last week aboard the Dana Pride out of Orange County, California, has made local and national news and the footage has led some to fall under the impression that the dolphins were being frightened or even struck by the vessel, even though common dolphins are known to approach boats in large numbers and veteran ocean-goers witness this type of event fairly frequently.

"I want to know why the boat didn't stop instead of ploughing through those dolphins? I wonder how many of them got hit," reads a comment beneath a video report on the Weather Channel website.

A Discovery News report stated: "Contrary to the idea that the dolphins are having a grand ol' time, it's more likely that the noise, vibration and water turbulence caused by the boat may have frightened the dolphins, which all reacted at once. As one YouTube commenter asks: 'Do you really have to drive your boat through the middle of them?' "

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But the reality is, when large pods of common dolphins are close to a moving boat, it's virtually impossible to avoid these types of encounters. The mammals do seem to enjoy the interaction, which they typically initiate, and they're amazingly adept at avoiding moving vessels.

Southern California researcher Alisa Schulman-Janiger, who has spent years studying local marine mammals, said she has never witnessed common dolphins exhibiting what resembles a negative reaction to a boat.

"They either ignore the boat, usually if they're feeding, or they race over to the boat," said the researcher, who has been amid pods of up to 10,000 common dolphins.

The new Field Guide to Marine Mammals of the Pacific Coast, written by National Marine Fisheries Service scientists, states that of all dolphin species globally, "Common dolphins are the most renowned and skilled for their delight in bow-riding" alongside moving boats.

The video was uploaded via YouTube on Feb. 23 by Dana Wharf Whale Watching, which did not anticipate so many negative comments from people who simply do not understand this phenomenon.

Not all the comments were negative, though, and some were amusing.

Reads this one from a user named Nesheim: "I want to know which direction they were going, so that I can order a trip in the same direction. This has Armageddon written all over it."

[Source: GrindTV.com.]


10 FRIGHTENING FACTS YOU PROBABLY DIDN’T KNOW ABOUT ANTS


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10 Frightening Facts You Probably Didn’t Know About Ants
By Robert T. Gonzalez,
io9.com.

We all know ants are incredibly capable creatures. They live in vast, interconnected colonies, can lift several times their own body weight, and coordinate their activity with incredible precision.

But many of the things that make ants impressive would also make them formidable foes. Perhaps it's time we took a look at some of these strengths in greater detail. Remember: it's important to know your enemy - erm, I mean your new insect overlords.

10. Ants are as old as the dinosaurs

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Right: Dinosaur Ant (genus dinoponera gigantea)

In 2006, Scientists from Harvard and Florida State University collaborated to conduct a massive genetic analysis on ants from 19 out of 20 known subfamilies. Their findings suggested that ants first arose in the mid-Cretaceous period - about 110-130 million years ago. And yes, that means:

9. Ants have already survived a mass extinction event

10 Frightening Facts You Probably Didn't Know About Ants
Illustration by Don Davis

The Cretaceous-Paleogene extinction event (still commonly referred to as the Cretaceous-Tertiary - or "K-T" - extinction event) is thought to have occurred approximately 65 million years ago following an absolutely massive impact event. Widely regarded as the downfall of the dinosaurs (and, incidentally, the rise of mammals), the years following the KT-extinction event are actually believed to have been a time of incredibly rapid speciation and worldwide expansion for ants, marking what researchers Bert Hölldobler and Edward O. Wilson - authors of the Pulitzer-prize winning book The Ants - call "a rise to ecological dominance."

8. Ants have conquered almost the entire globe

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The success of the ants all those millions of years ago continues to this day. In an article published in a 2000 issue of PNAS, entomologist Ted Schultz calls the rise of the ants "arguably the greatest success story in the history of terrestrial metazoa" (i.e. pretty much any multicellular animal on Earth - and yes, that includes humans), and rightfully so.

With the exception of Antarctica, the Arctic, and a handful of islands, just about every piece of land on Earth harbours at least one native ant species - the ones that don't host invasive species. Take the Hawaiian islands, for instance - not one of their more than 50 established ant species is believed to be native to the archipelago.

7. One group of ants conquered six continents

10 Frightening Facts You Probably Didn't Know About Ants

Take the Argentine ant, Linepithema humile, for example. In 2000, biologists Andrew Suarez and his colleagues at University of California, Davis, reconstructed the invasion history of the L. humile. The team revealed that in the last century alone, the species has become established in at least 15 countries throughout the world - including a number of isolated, oceanic islands (including Hawaii) - spanning six continents. Shown above is the world distribution of the Argentine ant.

6. The total ant population makes our 7 billion look weak

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In their Pulitzer-prize winning book The Ants, researchers Bert Hölldobler and Edward O. Wilson estimate that there are upwards of 10,000,000,000,000,000 (10,000 trillion or 10 quadrillion!) individual ants alive on Earth at any given time.

5. Some ants are quite large

10 Frightening Facts You Probably Didn't Know About Ants

Of course, even at numbers exceeding 10,000 trillion, ants are small, right? Well, that depends entirely on what you consider small. The largest ant ever discovered was actually a fossilized specimen belonging to Titanomyrma giganteum, was about 2.4 inches long and had a wingspan of almost six inches.

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A fossil ant queen found in Wyoming is the size of a rufous hummingbird’s body
and is the first giant ant species documented by more than a wing in North
America. Source.

Granted, T. giganteum isn't around anymore, and many ants are less than a millimeter long - but there are still species like the African driver ant, Dorylus wilverthi, that exceed two inches in length. Does that sound small to you?

4. Ants have a hive mind

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Truth be told, it doesn't matter if it sounds small to you or not. When 50-million of them come together to form a single, eerily coordinated superorganism (and yes - large, self-organized ant colonies are commonly referred to as "superorganisms") you can bet your ass you'll think it looks a lot bigger than a single, 2-inch ant.

3. In some regions of the world, ants can account for over a quarter of the animal biomass

10 Frightening Facts You Probably Didn't Know About Ants

But a 50-million ant superorganism, believe it or not, doesn't even begin to capture the true extent of the global ant presence. We're talking about worldwide ant domination, after all - so how much of the Earth's biomass do ants really account for?

In an article published in 2000 in Proceedings of the National Academy of Sciences, entomologist Ted R. Schultz writes that on average, ants "monopolize 15-20% of the terrestrial animal biomass, and in tropical regions where ants are especially abundant, they monopolize 25% or more."

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Total biomass of all humans on Earth is equal to the total biomass of all
species of ants. This means,  for every human alive on Earth there are
roughly 1.5 million ants crawling in and around their stuff. Source.

Granted, it would be misleading to say that ants have the largest biomass of any individual species on Earth (ants are actually a taxonomic Family that comprises over 20,000 known species) - but that's not to say they couldn't potentially set aside their interspecies differences. After all:

2. Ants cooperate with other species

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There are over 200 known species of so-called fungus growing ants. Scientists had long assumed that fungi cultivated by these ants were simply passed on between generations within individual species. But in a study conducted in 2000, researchers at the University of Texas at Austin discovered that the ants' cultivars are occasionally transferred between species, as well.

Interspecies cooperation would be one of the biggest hurdles along the path to establishing a global ant empire - but if fungus-growing ants can get along, perhaps other species could as well.

Then again, maybe cooperation wouldn't be necessary, because:

1. Ants practice slavery

10 Frightening Facts You Probably Didn't Know About Ants

Many species of ants are known to raid neighbouring colonies and steal eggs or larvae in a practice known as "dulosis". The forcibly acquired young are then either eaten or put to work.

Species that practice dulosis are called, quite simply, "slave-making ants," and they rely on this practice to support their colonies. In fact, some species of ants are thought to be incapable of feeding themselves in the absence of slave labour - to pillage and enslave is all they know.

[Source: io9.com. Edited. Some links and images added.]


Thursday, 1 March 2012

STUNNING PHOTOS OF THE JELLYFISH


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Photo Gallery: Jellyfish
By
National Geographic.


1. Mosaic Jellyfish
Photo: A floating, bell-shaped jellyfish and a bright blue fish
Photograph by Melissa Fiene, My Shot.

A mosaic jellyfish floats serenely in the waters of the Coral Sea, about 100 nautical miles from Cairns, Australia. Jellyfish are ubiquitous in the Earth’s oceans. They can thrive in warm water and cold, along coastlines or out in the deep. Their bodies are about 95 percent water. And though they have no brains, jellyfish have somehow been smart enough to survive for over 500 million years.


2. Moon Jellyfish
Photo: Jellyfish under a darkening sky
Photograph by David Doubilet, National Geographic.

These translucent jellyfish are named for their resemblance to Earth’s satellite - but the species has had an otherworldly experience. In 1991 moon jellies flew aboard the space shuttle Columbia during a study on weightlessness and the development of juvenile jellyfish. Here on Earth, the jellies are commonly found in warm ocean waters worldwide.

3. Purple-Striped Jellyfish
Photo: A large jellyfish backlit in greenish waters

Photograph by David Doubilet, National Geographic.

A large, purple-striped jellyfish floats in the waters of California’s Monterey Bay, where they sometimes arrive en masse. This jelly can grow up to three feet (one meter) in diameter and appear rather formidable. But its stinging tentacles are used to bring in mostly smaller prey, including zooplankton, larval fish, and fish eggs.

4. Jellyfish in Lagoon
Photo: A pulsing jellyfish moves through a lagoon
Photograph by David Doubilet, National Geographic.

With a distinctive pulsing motion, a jellyfish makes its way through the waters of a Pacific lagoon. Most jellyfish tend to simply drift along with prevailing currents. But some use more active methods of self-propulsion, including shooting a stream of water from their mouths. A jellyfish also uses its large, central mouth to consume food and expel waste.

5. Pacific Coast Jellyfish
Photo: Close-up of a reddish-orange jellyfish

Photograph by Paola Carolina Smania, My Shot.

Jellyfish use their dangling tentacles, equipped with hollow, harpoon like darts loaded with neurotoxins, to sting fish, shrimp, or crabs. The strike leaves its victim stunned for easier consumption. Humans can also receive a painful sting from these toxic tentacles, even those belonging to beached or dead jellyfish. In the case of a few species, like Australia’s notorious box jellyfish, stings can be fatal.

6. Lion’s Mane Jellyfish
Photo: A diver taking a close look at a large jellyfish
Photograph by Paul Nicklen, National Geographic.

A curious yet cautious diver approaches a lion’s mane jellyfish off the British Columbia coast. The tentacles that make up this jelly’s “mane” can deliver a painful and even potentially fatal sting. But such toxins don’t deter several fish species from feeding on the ample bulk of the cold water-loving jellyfish.

7. Comb Jelly
Photo: A colorful, bioluminescent comb jelly

Photograph by Jason Edwards, National Geographic.

Ctenophores are commonly called comb jellies because they use rows of hair like cilia to propel themselves through the water. This unique physiology also causes comb jellies to refract light, so they often shine with a rainbow of iridescent colour. In the absence of sunlight, comb jellies can still be colourful, if less vivid. Most species are bioluminescent.

8. Mastigias Jellyfish
Photo: Close-up of a jellyfish’s white tentacles

Photograph by Tim Laman, National Geographic.

Does this humble jellyfish help determine Earth’s climate? Studies of these Mastigias jellies in a landlocked Palau lake recently prompted scientists to suggest that the motion of sea animals plays a major role in seawater mixing. Winds and tides are major ocean mixers but sea creatures - including jellyfish - may account for as much as a third of the total, the study suggests. That would mean jellies are significant drivers of ocean circulation patterns and thus help to determine Earth’s climate.

9. Crab Carrying Jellyfish
Photo: A crab carrying a jellyfish across the seafloor
Photograph by Tim Laman, National Geographic.

Cassiopea andromeda, the upside-down jellyfish, is named for one of Greek mythology’s treacherous queens. Cassiopeia was punished by Poseidon, who deemed that her constellation often appear upside-down in the sky. Her namesake jelly often lies on the seafloor with its mouth and arms facing the surface, which allows symbiotic algae to collect sunlight for photosynthesis and pass nutrients along to the jelly. Crabs sometimes carry these jellyfish on their backs to serve as a very effective protective shield.

10. Crab on Purple Jellyfish
Photo: Small crab atop a much larger purple-striped jellyfish
Photograph by David Doubilet, National Geographic.

Some animals, like these young crabs and some juvenile fish, can live unharmed among a jellyfish’s venomous tentacles. There, protected from prey, they feed on jellyfish left-overs like zooplankton or larval fish and remove parasites from their accommodating hosts.

11. Jelly-Riding Crab
Photo: A crab clinging to a floating jellyfish

Photograph by Hannah Johnson, My Shot.

A crab clings to its floating host as both are swept out to sea near Wrightsville Beach, North Carolina. One role jellyfish play in the marine ecosystem is the transport of other animals across the ocean.

12. Jellyfish Lake, Palau
Photo: Jellyfish in water
Photograph by Tim Laman, National Geographic.

Marine scientists warn that Earth’s oceans may look increasingly like this image - teeming with ever growing populations of jellyfish. Overfishing has eliminated many of the jellies’ natural predators and competitors, while climate change is warming water temperatures to levels preferred by the invertebrates. The combination, scientists say, could produce future seas simply saturated with jellyfish.

[Source National Geographic. Edited.]



TOP 10 SCIENCE MISTAKES


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Top 10 Science Mistakes
By
Science Discovery.

Ways Scientists Were Wrong

Take a deep breath: Believe it or not, scientists are not always right. We really put them up on a pedestal, though, don't we? We quote scientists as experts, buy things if they're "scientifically proven" to work better…but scientists are human, too. It's just not fair to expect perfection out of them, is it? But come on, can't we at least ask for a reasonable level of competency?

10. Alchemy


The idea of morphing lead into gold may seem a little crazy these days, but take a step back and pretend you live in ancient or medieval times.

Pretend you never took high-school chemistry and know nothing about elements or atomic numbers or the periodic table. What you do know is that you've seen chemical reactions that seemed pretty impressive: substances change colours, spark, explode, evaporate, grow, shrink, make strange smells - all before your eyes.

Now, if chemistry can do all that, it seems pretty reasonable that it might be able to turn a dull, drab, grey metal into a bright, shiny yellow one, right? In the hopes of getting that job done, alchemists sought out the mythical "philosopher's stone," a substance that they believed would amplify their alchemical powers.

They also spent a lot of time looking for the "elixir of life." Never found that, either.


9. Heavier Objects Fall Faster


OK, trick question: do heavier objects fall faster than lighter ones? Today, we all know that they don't, but it's understandable how Aristotle could have gotten this one wrong.

It wasn't until Galileo came along in the late 16th century that anyone really tested this out. Though he most likely did not, as legend holds, drop weights from the tower of Pisa, Galileo did perform experiments to back up his theory that gravity accelerated all objects at the same rate. In the 17th century, Isaac Newton took us a step further, describing gravity as the attraction between two objects: on Earth, the most important being the attraction between one very massive object (our planet) and everything on it.

A couple of hundred years later, Albert Einstein's work would take us in a whole new direction, viewing gravity as the curvature that objects cause in space-time. And it's not over. To this day, physicists are ironing out the kinks and trying to find a theory that works equally well for the macroscopic, microscopic and even subatomic. Good luck with that.

Find out more about Newton's Laws of Motion with our Newton game. No, seriously...it's fun!


8. Phlogiston


What? You've never heard of phlogiston? Well, don't beat yourself up about it, because it's not real.

Phlogiston, proposed in 1667 by Johann Joachim Becher, was another element to add to the list (earth, water, air, fire and sometimes ether); it wasn't fire itself, but the stuff fire was made of. All combustible objects contained this stuff, Becher insisted, and they released it when they burned.

Scientists bought into the theory and used it to explain a few things about fire and burning: why things burned out (must have run out of phlogiston), why fire needed air to burn (air must absorb phlogiston), why we breathe (to get rid of phlogiston in the body).

Today, we know that we breathe to get oxygen to support cellular respiration, that objects need oxygen (or an oxidizing agent) to burn and that phlogiston just doesn't exist.


7. The Rain Follows the Plough


If only it were so easy. It's actually kind of shocking that humanity held on to the idea that land would become fertile through farming for so long. Didn't anyone look around and see that all this farming of arid land wasn't doing much?

So much for observation.

In reality, this quite erroneous theory (popular during the American and Australian expansions) may have stayed alive in part because it did sometimes work - or at least it seemed to work.

What we know now is that the plough (also spelt plow) wasn't actually bringing the rain; long-term weather patterns were. Arid regions (like the American West, for example) go through long-term cyclical droughts, followed by cycles of wetter years. Wait long enough and you'll get a few wet ones.

There's just one problem: wait a few more years and all the rain just goes away - only now, you've got a civilization to support.


6. The Earth Is Only 6,000 Years Old


Once upon a time, the Bible was considered a scientific work. Really. People just kind of assumed it was accurate, even when it didn't make much sense.

Take the age of the planet, for example.

Back in the 17th century, a religious scholar took a hard look at the Bible and estimated that creation happened around 4004 B.C. (you know, approximately). Add in nearly 2,000 more years to get to the 18th century, when Western, Bible-reading geologists started to realize that the Earth was constantly shifting and changing, and you get about 6,000 years.

Hmm...those biblical scholars may have been a bit off. Current estimates, based on radioactive dating, place the age of the planet at around, oh, 4.5 BILLION years.

By the 19th century, geologists started putting the pieces together to realize that if geologic change was happening as slowly as they thought it was, the Earth had to be WAY older than they had thought. The emergence of radioactive dating in the early 20th century would eventually prove them right.


5. The Atom Is the Smallest Particle in Existence


Believe it or not, we weren't actually all that stupid in ancient times. The idea that matter was composed of smaller, individual units (atoms) has been around for thousands of years - but the idea that there was something smaller than that was a bit harder to come by.

It wasn't until the early 20th century, when physicists like J.J. Thompson, Ernest Rutherford, James Chadwick and Neils Bohr came along, that we started to sort out the basics of particle physics: protons, neutrons and electrons and how they make an atom what it is. Since then, we've come a long way: on to charmed quarks and Higgs bosons, anti-electrons and muon neutrinos. Let's hope it doesn't get too much more complicated than that.

4. DNA: Not So Important


DNA was discovered in 1869, but for a long time, it was kind of the unappreciated assistant: doing all the work with none of the credit, always overshadowed by its flashier protein counterparts.

Even after experiments in the middle part of the 20th century offered proof that DNA was indeed the genetic material, many scientists held firmly that proteins, not DNA, were the key to heredity. DNA, they thought, was just too simple to carry so much information.

It wasn't until Watson and Crick published their all-important double-helical model of the structure of DNA in 1953 that biologists finally started to understand how such a simple molecule could do so much. Perhaps they were confusing simplicity with elegance.


3. Germs in Surgery


Laugh or cry (take your pick), but up until the late 19th century, doctors didn't really see the need to wash their hands before picking up a scalpel.

The result? A lot of gangrene. Most early-19th century doctors tended to attribute contagion to "bad air" and blamed disease on imbalances of the "four humors" (that's blood, phlegm, yellow bile and black bile, in case you weren't familiar).

"Germ theory" (the revolutionary idea that germs cause disease) had been around for a while, but it wasn't till Louis Pasteur got behind it in the 1860s that people started listening. It took a while, but doctors like Joseph Lister eventually connected the dots and realized that hospitals and doctors had the potential to pass on life-threatening germs to patients.

Lister went on to pioneer the idea of actually cleaning wounds and using disinfectant. Remember him next time you reach for the Purell.


2. The Earth Is the Centre of the Universe


Chalk it up to humanity's collectively huge ego. Second-century astronomer Ptolemy's (blatantly wrong) Earth-cantered model of the solar system didn't just stay in vogue for 20 or 30 years; it stuck around for a millennium and then some.

It wasn't until almost 1,400 years later that Copernicus published his heliocentric (sun-cantered) model in 1543. Copernicus wasn't the first to suggest that the we orbited the sun, but his theory was the first to gain traction.

Ninety years after its publication, the Catholic Church was still clinging to the idea that we were at the centre of it all and duking it out with Galileo over his defence of the Copernican view. Old habits die hard.

1. The Circulatory System


You don't have to be a doctor to know how important the heart is...but back in ancient Greece, you could be a doctor and STILL have no idea how important the heart is.

Back then, doctors like second-century Greek physician Galen believed (no kidding) that the liver (not the heart) circulated blood (along with some bile and phlegm), while the heart (really) circulated "vital spirit" (whatever that is).

How could they be so wrong? It gets worse.

Galen hypothesized that the blood moved in a back-and-forth motion and was consumed by the organs as fuel. What's more, these ideas stuck around for a very long time. How long?

It wasn't until 1628 that English physician William Harvey let us in on our heart's big secret. His "An Anatomical Study of the Motion of the Heart and of the Blood in Animals" took a while to catch on, but a few hundred years later, it seems beyond common sense - perhaps the ultimate compliment for a scientific idea.

COMMENT:

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Artist impression of Ibn Al-Nafis
Muslim physician-jurist, Ibn Al-Nafis (1213-1288 AD), goes down in the history of medicine as the first scholar to understand the respire-circulatory system. He was the first to describe the pulmonary circulation of the blood in his work, Commentary on the Anatomy of Canon of Avicenna. He was the first to correctly describe the constitution of the lungs and gave a description of the bronchi and the interaction between the human body's vessels for air and blood. Also, he elaborated the function of the coronary arteries as feeding the cardiac muscle.

Sadly, because very little of his work was translated into Latin, much of his knowledge did not pass into western history. Consequently,  his work was woefully underutilized by western scientists and even the likes of Leonardo Da Vinci made incorrect observations based upon Galen and Avicenna, without realizing that Al Nafis had already addressed many of the issues relating to the circulatory system.

Al-Nafis’ contribution was only re-discovered by modern science after a lapse of four centuries, which was around the time of William Harvey. Harvey has been wrongly credited with the modern theory of Pulmonary Circulation; that credit belongs to Al-Nafis (see photo below). This fact was acknowledged by western scholars themselves, such as Professor Dr J B Latham of the University of Manchester at the tercentenary of the death of William Harvey in 1957. (Click the first three sources linked below for further information.)

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Artist impression of Al-Biruni
The sections relating to the discoveries of the theory of gravity (No. 9) and the sun-cantered (heliocentric) model of the solar system (No. 2) are also not accurate. It was the Muslim scholar, Abu Rayhan ibn Al-Biruni (973-1048 AD), who was the first to conduct experiment related to astronomy, though most people would think that it was Galileo or Copernicus.

At a time when people believed in the geocentric theory (earth as the center of the universe) he clearly knew, 600 years before Galileo, that earth rotates on its axis on daily basis and moves yearly around the sun. He argued that heliocentric model of the earth fits very well with his astronomical parameters. He made a scientific explanation of why the sun never sets in the north or south pole at certain months of year.

Illustration by Al-Biruni of different phases of the moon, from Kitab al-tafhim.
Source: Seyyed Hossein Nasr, Islamic Science: An Illustrated Study, London:
World of Islam Festival, 1976.

His famous diagram (shown above) showing different phases of moon clearly indicates the moon revolving around earth and the earth revolving around the sun. Al-Biruni invented a Three Point Observation method which was used by Copernicus to calculate the eccentricity of earth’s orbit around the sun.

He also discussed about the gravity of the earth by saying that every thing attracts toward the center of the earth which we now know is true. (Click the last two sources linked below for further information.)


[Article Source: Science Discovery. Edited. Some images added.]