Showing posts with label Northern Lights Aurora Borealis facts. Show all posts
Showing posts with label Northern Lights Aurora Borealis facts. Show all posts

Thursday, June 26, 2014

3.6 million-year-old relative of 'Lucy' discovered: Early hominid skeleton confirms human-like walking is ancient

Meet "Lucy's" Great-Grandfather. Cleveland Museum of Natural History Curator and Head of Physical Anthropology Dr. Yohnannes Haile-Selassie led an international team that discovered and analyzed a 3.6 million-year-old partial skeleton found in Ethiopia. The early hominid is 400,000 years older than the famous "Lucy" skeleton and is significantly larger in size. Research on the new specimen reveals that advanced human-like, upright walking occurred much earlier in the evolutionary timeline than previously thought.

Haile-Selassie is the first author of the initial analysis of the specimen, which will be published in the online early edition of the Proceedings of the National Academy of Sciences during the week of June 21, 2010.
The partial skeleton belongs to "Lucy's" species, Australopithecus afarensis. It was found in the Woranso-Mille area of Ethiopia's Afar region by a team led by Haile-Selassie that excavated of the skeleton over five years following the discovery in 2005 of the lower arm bone. The team recovered the most complete clavicle and one of the most complete shoulder blades ever found in the human fossil record. A significant portion of the rib cage was also found.
The specimen was nicknamed "Kadanuumuu" (kah-dah-nuu-muu) by the authors. This means "big man" in the Afar language and reflects its large size. The male hominid stood between 5 to 5 ½ feet tall, while "Lucy" stood only 3 ½ feet tall.
"This individual was fully bipedal and had the ability to walk almost like modern humans," said Haile-Selassie. "As a result of this discovery, we can now confidently say that 'Lucy' and her relatives were almost as proficient walking on two legs as we are, and that the elongation of our legs came earlier in our evolution that previously thought."
He explained, "All of our understanding of Australopithecus afarenis' locomotion was dependent on 'Lucy.' Because she was an exceptionally small female with absolutely short legs, this gave some researchers the impression that she was not fully adapted to upright walking. This new skeleton falsifies that impression because if 'Lucy's' frame had been as large as this specimen, her legs would also have been proportionally longer."
Kent State University Professor Dr. C. Owen Lovejoy was a co-author of the research and helped analyze the skeleton. When comparing it to "Lucy," Lovejoy said, "They both have pelves, a complete lower limb bone and elements of the forelimb, vertebral column and thorax. However, the new specimen has more complete ribs and a nearly complete scapula, which tells us much more about body form in Australopithecus afarensis than 'Lucy' was able to alone."
Authors of the research include Cleveland scientists Dr. Bruce Latimer, interim director of the Center for Human Origins of the Institute for the Science of Origins at Case Western Reserve University, and Dr. Beverly Saylor, associate professor of geological sciences at Case Western Reserve University. Other co-authors are from Addis Ababa University in Ethiopia, Berkeley Geochronology Center and Stanford University.
Australopithecus afarenis is the best-known direct early human ancestor. Until now, the only partial skeleton assigned to this species was "Lucy," a 3.2 million-year-old female individual, which was discovered in 1974 by a team led by then Museum curator Dr. Donald Johanson.
The analysis of "Kadanuumuu" indicates that the shoulder and rib cage of this species were different from those of chimpanzees. "These findings further confirm what we concluded from the 'Ardi' specimen -- that chimpanzees have undergone a great deal of specialized evolution since we shared a last common ancestor with them," said Lovejoy.
"Ardi," or Ardipithecus ramidus is a 4.4 milion-year-old hominid species that was unveiled in October 2009 by a team that included Haile-Selassie, Lovejoy, and Museum scientists and associate researchers Dr. Linda Spurlock, Dr. Bruce Latimer and Dr. Scott Simpson. "Ardi" was named by the journal Science as breakthrough discovery of the year. Click here to find out more about "Ardi."

Wednesday, May 21, 2014

Tomb Raider: Enter the British Museum's UnderGround Mummy Store

It was a couple of days after I visited the mummy store that my nightmares began. Bandaged bodies on shelves. A loose wrapping, perhaps about to uncoil further as the corpse within awoke from its 3,000-year sleep. Most of all, the painted face of a young man gazing untiringly into darkness as the curator turned out the lights behind us and firmly locked the door.
Hidden in the heart of the British Museum, deep within a labyrinth of research departments the public never sees, is a secret world of the dead. This museum, whose collections blossomed in the age of empire when Egypt was under British control, owns more than 100 mummies. Many are on permanent display. Eight were taken to hospital to undergo CT scans for the museum’s revelatory new exhibition Ancient Lives. Others lie here, on wooden pallets, layered one over the other, in London’s most enigmatic morgue.
The room doesn’t need to be especially cold – the mummies were embalmed millennia ago, their brains and organs removed to prevent internal decay – but it does have a carefully regulated temperature that suits the fragile dead. Their casings, too, are organic and need care: linen wrappings, wooden coffins. One of the coffins dates from about 3,000BC – older than the pyramids – and is just a timber crate. Later ones are painted in styles from Old Kingdom to Roman, laden with hieroglyphic spells.
Why are mummies spooky? Why are horror stories told about them and why do Scooby Doo scenarios come to mind when you see them in a museum? I’d love to pretend that I was too interested in proper archaeology to waste time on such stuff, but I really did have nightmares after visiting the mummy store. And they got me thinking about what mummies really are: vehicles of immortality.
It’s amazing that any Egyptian mummies have survived to be preserved in the British Museum. Over the centuries, thousands have been destroyed through superstition and morbid curiosity. In the 18th century, "mummy", the powdered flesh and bone of the ancient Egyptian dead, was swallowed as medicine. Even when a growing fascination with Egypt made this seem wasteful, things got little better, for public unwrappings of mummies became all the rage. Invaluable archaeological evidence was destroyed for cheap thrills.
Then the horror stories began. The 19th-century writers Theophile Gautier, Edgar Allan Poe and Bram Stoker all wrote eerie tales about mummies, but it was Arthur Conan Doyle, creator of Sherlock Holmes, who hit on the perfect formula of the revived mummy in his story Lot 249. Soon the 1932 Boris Karloff classic The Mummy launched the pharaonic dead on their fantastic film career.
Is all this a depressing insight into our vulgar souls and inability to be interested in the remote past unless it is turned into cheap fiction? No. The gothic imagination feasts on mummies for a good reason. They are genuinely uncanny: the closest that humanity has come to conquering death.
Ancient Egyptians wanted to live for ever. Almost all the Egyptian art and artefacts in museums are part of an effort to achieve this. False doors from tombs – the British Museum has a majestic one painted red that resembles a massive stone Mark Rothko painting – are portals through which the ka, or spirit double, of the deceased person could come to receive food offerings. The models of people brewing beer that were put in tombs were intended to provide actual beer for the living dead.
Everything important in a tomb, from small sculpted servants to the mummy itself, was touched with an adze by a priest in a ritual called "the opening of the mouth". This rite gave magical potency to everything the ka would need in the next life – and its needs included the mummified corpse. The reason for perfectly preserving the corpse was so that its ka could recognise it, and so connect with it to enjoy the food and drink the mummy digested on its behalf.
Spirit and body were mysteriously connected. It’s not that Egyptians believed that the mummy could get up and chase people round museums – but they did believe that the dead person’s spiritual ka form, which needed the mummy to exist, could leave the tomb and walk around. There are statues of it doing just that.
So what? People believe all kinds of things. But the ancient Egyptians believed in their conquest of death for at least 3,000 years and repeated their spells and rituals over and over again. Their art is incredibly powerful because it is full of the confidence and faith of those rituals. It is truly magical art. Looking at the painted caskets in the mummy store I am moved by the conviction they communicate that death is not the end, but only the beginning of a strange adventure.
The door closes. The eternal night of the tomb returns. The young man’s painted face looks calmly into the eyes of his ka.

Friday, May 16, 2014

Britain's First Industrial Revolution

While the advances in technology and manufacturing that took place in Britain during  the 18th and 19th centuries have entered the mainstream of history, few know about the industrialisation carried out during the Roman occupation, says Simon Elliott.


The phrase ‘Industrial Revolution’ plays such a central role in the narrative of British history that few historians have asked whether the British Isles experienced anything similar prior to its advent in the 18th century. It seems, however, that Britain did experience a form of industrial revolution, from the later first century through to the the end of the fourth, the period of the Roman occupation. During this time, parts of the British Isles, especially in the south and the east, developed a wide variety of industries, which, like those of the Industrial Revolution of the 18th and 19th centuries, were large in scale, were marked by engineering innovation and involved complex manufacturing processes. These industries became incorporated into a sophisticated international economic system, supported by an advanced maritime and land-based transport infrastructure. This revolution played a major role in shaping the nature of society throughout the period of the Roman occupation.

While there is no question that the economy of the Roman Empire as a whole remained overwhelmingly agrarian, industry played an important role, a fact still evident today in the high levels of pollutants that remain from Roman industrial activity (such as lead and copper emissions), which can be traced in the Greenland ice cores. Using ice-core copper pollution as an example, it appears that the only other major period of substantial industrial output anywhere in the world between the Roman Empire and the modern Industrial Revolution occured during the 11th century, in Sung dynasty China. The scale of industry that developed in Britain during the Roman occupation was certainly revolutionary compared with what had existed before, during the later Iron Age. It was also extraordinary in comparison with what came later.

The economy of the Roman Empire featured large-scale state-controlled mining (metalla) and quarrying enterprises, as well as manufactories producing a wide variety of products, including: weapons of uniform quality and size; fine Samian ware pottery; textiles; milling and other food production enterprises, not least the ubiquitous garum fish sauce, beloved throughout the Empire. Such a suite of industries also became a major feature of the British experience of Romanitas. Examples include the huge iron producing enterprises (initially in the Weald of Sussex, Surrey and Kent and later in the Forest of Dean and the East Midlands); industrial-scale quarrying to serve the urbanisation and later fortification of Britain (a demand fulfilled by a thriving construction sector); tile and brick production; mining of all kinds; a huge number of pottery kilns; mosaic and glass production; salt production; and, possibly, the manufacture of garum. Meanwhile the production of quern stones flourished, along with the milling industry to which it was central, while Britain was also home to a thriving textile industry. The latter was highly regarded throughout the empire for two textile products: a form of the birrus hooded cloak and a fine quality tapetia rug.

A coin-minting industry also developed, revealing of the political and economic progress made in the province during the occupation. There were more coins minted and circulated in Britain during the occupation than ever before. The principal official mint was in London, where coins were produced between AD 286-324 and 383-388. Of the 29 major mints from across the empire represented in the British Portable Antiquities Scheme database, the 2,987 coins made in London represent the fifth largest category, an impressive statistic as it is surpassed only by the output of the major urban centres of Rome itself, Trier, Arles and Lyon.

To look at a specific regional example of Roman industrialisation in Britain, the south-east featured a range of enterprises, largely based on the extractive industries. These sat broadly within three economic zones of activity. The first was around the river valleys of the Darent, a tributary of the Thames, and (principally) the Medway, both of which were within the economic sphere of London. A second was in a zone running down the east Kent coast from Dover to Lympne (in the economic sphere of Canterbury and the imperial gateway at Richborough). The third was in the Weald of Kent, Sussex and Surrey.

While the Darent Valley was notable for the large villa estates constructed for Roman London’s political and economic elites, the luxurious villas constructed along the Medway valley belonged in the main to those who managed a vast and flourishing industrial landscape based around extensive ragstone quarries above the tidal reach at Allington. This industry was facilitated by a complex river infrastructure in the form of locks and weirs, which made the Medway navigable to the ships and barges that carried the enormous quantities of ragstone into the Thames Estuary and beyond.

From there the ragstone was shipped around the south-east, as far afield as Colchester (where it was used in the construction of the town’s Claudian temple and the gates of the Circus) and Bradwell (later a Saxon shore fort) to the north, London to the west and Richborough (where it was used in the monumental arch and its superseding Saxon shore fort) to the east. The scale of this industrial activity has led scholars to consider the possibility that the Roman state was directly involved, at least during the earlier years of the occupation. The excavation in the early 1960s of the 14 metre-long merchant ship Blackfriars 1 has shed light on this process. This vessel, dated to the early second century, was found by Blackfriars Bridge on the western edge of the City of London, just where the River Fleet would have entered the Thames. Crucially, it foundered while carrying 26 tonnes of Kentish ragstone from the Medway valley quarries, still in its hold when it was discovered some 1,800 years later.

While there is evidence that other materials were quarried in the Medway valley during the occupation – for example, the sand and chalk for which the industry is better known in the modern era – it is the ragstone quarrying which has left its unmistakable mark to this day on the Roman south-east. Ragstone is a grey-green, sandy and glauconitic limestone found within the Hythe Beds of the Lower Greensand geological formation near Folkestone. It was highly valued by the Romans for its durability and the comparative ease with which it could be worked and is a common feature of many of the region’s buildings and monuments. A primary example is the late second-century Roman land walls of London, over three kilometres long, whose fine quality facing blocks are still visible in surviving sections, such as those near Tower Hill underground station. This enterprise alone is a remarkable example of the demand for the material, with modern estimates indicating that over one million squared and dressed ragstone blocks would have been required for the inner and outer facing, together with a rubble ragstone core, which was then set with mortar. A similar vessel to Blackfriars 1 would have needed to have made around 1,750 voyages of 56km each way to transport the 45,000 tonnes of ragstone required for such a massive building programme.

The quarries needed to supply this monumental demand were of a matching scale. While ragstone outcrops are found in the Hythe Beds, the finest quality material lies within the outcrops in the upper Medway valley and these were heavily exploited during the occupation. There are four likely sites for the quarries: at Allington (actually on the tidal reach), Boughton Monchelsea to the south of modern Maidstone, Dean Street (also south of Maidstone and, at 2.5km long, one of the largest man-made features of occupied Britain) and finally at Teston, slightly further upriver. Each of these sites had direct access either to the Medway itself or, in the case of Boughton Monchelsea, to a major tributary, the Loose Stream, notable for its mills. The luxury villas of the associated elite were located in Maidstone, East Farleigh, Barming and Teston, all within easy reach of the quarries. A Roman road ran from the Dean Street quarry to the Roman ford at Barming and to a nearby villa at East Farleigh.

East Wear Bay, at Folkestone, was well known for its quern stone industry, which manufactured high quality Greensand querns from the outcropping in the local cliffs. The success of the industry is evident from the widespread export of the querns made there, examples being found as far afield as Hunsbury in Northamptonshire and possibly in northern France. This particular Greensand was noted for its strength, a quality critical to the quern stone’s grinding power and resistance to wear. It also allowed industrial-sized millstones to be manufactured, for use at high-volume regional water mills, such as that on the River Stour at Ickham, Kent. The archaeological record suggests that the quern stone industry in Folkestone preceded the arrival of the Romans, with evidence of its origins in the later Iron Age. However it is clear that the beginning of the occupation marked a dramatic increase in the scale of such activities and in the ability to transport the manufactured goods to new markets, a hallmark, too, of the Industrial Revolution of the 18th and 19th centuries. Meanwhile other building stone was quarried locally, as the region began its path to Roman urbanisation and fortification. Tufa (volcanic rock), was quarried extensively in the valley of the River Dour above Folkestone. Blocks of the material are found in the walls of the forts of the Classis Britannica, the Roman fleet based in Britain, and also in later Saxon shore forts at Dover and Lympne, the pharos at Dover, settlement buildings in the same town and in the large villa at East Wear Bay. Chalk was also quarried extensively, as was flint. Again, both were used as building materials, while a large ragstone quarry has been located above the Saxon shore fort at Lympne, which supplied the stone for its construction.

Further west the Weald reveals the extensive industrial landscape renowned for iron manufacturing during the occupation. This industry, too, had its origins in the later Iron Age, at sites such as Garden Hill in East Sussex. However it is with the arrival of the Romans that large-scale activity began, especially near the coast of the eastern Weald. Intensive sites such as Beauport Park, Footlands and Oaklands Park began processing huge quantities of locally mined iron ore to produce high quality iron, which was exported around the region and abroad from ports such as Bodiam on the River Rother and Castle Croft on the River Wallers Haven. These major sites were also linked to the Medway valley by the Roman Road that travelled north from Beauport Park, past Footlands and Oaklands Park, through modern Maidstone and then on to Roman Rochester.

Using a ‘direct process’ method, which combined smelting and forging in one procedure, some of the furnaces used during the occupation were larger than any in use again until the coming of the Industrial Revolution proper. Recent estimates indicate that during the 200 years when the Romano-British Wealden iron industry was at its height, based on the current estimate of 100,000 tonnes of slag in the region, the industry produced up to 30,000 tonnes of iron at 113 known sites. The four largest sites produced 44 per cent of the total of this waste volume and were thus by far the largest contributors to overall iron production. The Beauport Park site produced 210 tonnes of iron annually from the first to the third centuries AD.

There was an extensive brick and tile manufacturing industry in the Weald, which made use of the fine quality clays abundant in the region. The industry is heavily associated with the tiles stamped ‘CLBR’, indicating a building belonging to the Classis Britannica, which are found across the region and have been discovered as far afield as Boulogne. The Grey Wealden shale quarried to make finely cut tiles is regularly found within the boundaries of what was Roman London in the form of Opus Sectile tiled floors, a style of illustrative, mosaic-like decoration.

Patterns common to all three of these significant industries are discernible. Kentish ragstone is known to have been used in the first Roman forum in London, built during the AD 50s. It is also found in the Claudian temple in Colchester, constructed sometime before the Boudiccan revolt of AD 43. Meanwhile at least nine of the iron-making sites in the Weald were fully operational by the end of the first century AD, indicating the early beginnings of industry. Although iron manufacturing existed to a limited extent in the Weald before the occupation, there was certainly no ragstone quarrying taking place. It, therefore, seems likely that the Romans had some knowledge before their official arrival of the available resources in the south-east and of their potential for industrial-scale exploitation.

There is a clear chronological distinction between the period of large-scale industry typical of the middle of the third century and the more localised activity which marks the period immediately before the end of the Roman occupation. The use of Kentish ragstone on a grand scale declined during the third century (the later river wall and bastions of London are made of recycled material from public buildings and mausolea rather than the fine ragstone of the earlier land wall). Meanwhile, iron manufacturing in the Weald had also ceased by this time. The Classis Britannica in its earlier, large-scale phase, acting on the authority of the Procurator (the official in charge of a province’s financial affairs), had facilitated the opening up of industrial activity on a large scale, with the emphasis on making the new province pay its way. Across the empire the regional merchant navies had a strong association with the extractive industries (including the Classis Germanica on the River Rhine) and this was certainly the case in the Weald, where many of the larger iron manufacturing sites that have been excavated feature considerable numbers of local CLBR-stamped tiles. The Classis Britannica played a similarly crucial role with the Medway valley’s ragstone quarrying industry, given the need to manage what was a vast business enterprise, including the maritime transport necessary to carry the stone and the building and management of the river infrastructure required. Even the quern industry at East Wear Bay has a Classis Britannica link, evidenced by the plentiful CLBR-stamped tiles found locally (including at the Folkestone villa).

But the Classis Britannica disappears from history in the middle of the third century, its last reference being in an epigraphic testament to one Saturninus, ex-captain in the fleet, dated to no later than AD 249. It is at this time that major changes take place in the three zones, for example, the decline of industrial-scale ragstone quarrying and iron manufacturing described above, as well as in settlement patterns. It is in this context that industrial activity becomes much more localised. This transformation is paralleled by other changes in Britain, for example, in settlement patterns. It is a matter of debate whether such changes from large-scale state-run activity and associated settlement to localism was regionally specific or simply a symptom of the maturing imperial project during a century when huge changes were taking place amid the crisis of the third century, which culminated in the Diocletianic Persecution of Christians throughout the Roman Empire in the late third and early fourth centuries, ending in 313 with the Edict of Milan, passed by Constantine and Licinius.

There were clearly differences between the arrival of industry into Britain during the occupation and the ascendency of industry over agriculture during the Industrial Revolution of the 18th century. Britain’s census of 1851 shows that over half of the economically active population were for the first time employed in industry (determined as manufacturing, mining and construction). One simply cannot say that the Classical economy was dominated by industry, because it was not, though it did play an important role. In that regard, three questions arise: was there a pronounced increase in the scale of industry in Britain with the advent of the occupation? Was there a pronounced increase in the level of engineering innovation at the same time? Could one describe some of the industry as manufacturing? The answer to all three questions is yes. The increase in scale of the industries, such as quarrying and iron manufacturing, was enormous. Further, consider the impact that the 18th-century Industrial Revolution had on the economy and on society and ask if this was replicated earlier, during the Roman occupation. While long-range trading networks have been a feature of human economic activity since the Neolithic period or earlier, nothing had existed in Britain before the Roman occupation to compare with the international economy within which it suddenly found itself. Society in Britain dramatically changed with the advent of the occupation and manpower-intensive industries such as quarrying and iron manufacturing had a major social impact in the regions where they were prominent. Both the Britain of the Roman occupation and that of the Industrial Revolution experienced substantial population growth. In the Roman period this peaked at up to four million, an increase from no higher than two million in the later Iron Age. There is evidence that parts of the country experienced a population crash towards the end of the Iron Age, indicating that pre-Roman population levels were not sustainable. The rapid population growth that followed the occupation is evident in the new towns and cities, the civitas capitals, municipa, coloniae and small towns replacing the far fewer oppida (defensive settlements) which had existed before. While Roman population growth can seem insignificant compared with that associated with the later Industrial Revolution, it is important to acknowledge the scale and rate of change in comparison with what had existed before. For all these reasons one can argue that the arrival of the Romans in Britain marked the onset of an Industrial Revolution which would not be replicated nor surpassed until the 18th century.

Thursday, May 15, 2014

NORTHERN LIGHTS AURORA BOREALIS - THE FACTS

 What are the Auroras or Northern Lights?

The Northern Lights or Aurora Borealis are discharged particles from the sun that pass through the magnetic shield of earth and create light when they mix with atoms and molecules such as nitrogen and oxygen gases on entering into the earth's atmosphere. These particles travel 149 million kms or 93 million miles through space towards planet earth being drawn towards the earth's magnetic north and south polar regions.

Inside the Sun

The brighter areas are sun spots- portals where gases escap
photo : NASA

If the sun was hollow earth would fit 333.000 times inside it's mass, at it's core temperature the sun is around 27 million degrees and is made up of mainly hydrogen gas. It behaves similar to a pot of boiling water, as water boils to the surface of a pot in a mushroom form it cools by letting off heat and then returns downward to be reheated again. As the sun's burning gases go through this similar process some particles escape from portals on the surface called Sun Spots and enter into space as flying plasma particles named Solar Wind.





Sun Spots
The sun has many magnetic fields that emerge from within the sun forming loops that protrude out from the
Explosions shaped by the suns magnetic fields blast through
sun spot portals. photo: NASA
surface, like spaghetti in boiling water. As the sun rotates these magnetic fields get distorted, twisted and knot together where they burst and a sun spot is born. They usually appear in pairs and can vary in size the largest being several times the diameter of earth. These sun spot portals are responsible for the solar wind projections.






The earth's protective shield

The Solar Wind travels at an extraordinary speed covering the 93 million miles to earth in a staggering 2 to 3
days. It's around 1000km per second or a million miles per hour. Normally the earth can deflect such space matter easily because of earth's magnetic field which acts as a protective shield (kind of like water flowing around a stone in a river). However in high activity cycles called Solar Flares the increased particles travel through space and bombard our magnetic shield to deform it slightly in shape. Some of these particles penetrate our magnetic field and come into contact with different gases which produce the aurora northern lights that we see.

The colors of the Aurora
As the solar wind particles enter the earth's atmosphere they collide with molecules of nitrogen and
oxygen which relinquish their agitated energy in the form of light. Oxygen typically produces green and yellow light while nitrogen produces reds, violets and occasionally blue. Violets typically form a boarder around curtains of green aurora shapes in lower altitudes.






The Aurora shapes
The Northern Lights can be both static and dynamic throughout the night sky. During periods of minimum solar flares the aurora can produce a blanket strip type of light without much definition or varying color. However during periods of strong solar flares the light becomes dynamic which swirls, dances and even races in curtains and columns in a random path throughout the sky. The colors merge and diverge from greens to reds and violets. The sight is spectacular beyond belief.

When and where to see the Northern Lights
Where - The auroras can be seen at the polar regions of the north and south pole. However the south pole is
largely inaccessible to human life and the north polar region is easily accessed from Europe. The best chance you have is to visit the latitudes in the Arctic Circle from 68 to 74 degrees. Alaska and parts of Canada are also good for sightings but due to the great vast open expanses of these countries it can make a visit to them an real logistical expedition. Norway and the northern parts of Scandinavia are easily accessible and provide one of the best places in the world to witness auroras or northern lights in Norway.

When - during the winter season as this is due to the low light pollution and crystal clear air. The auroras occur all year round but we need nightfall to see it as the sun's light during the day overpowers the northern lights. The Aurora activity seems to be at it's most active late evening between 10pm and 1am but can be seen in the afternoons during the polar winter above the Arctic circle.

The sun's cycle - sun spots increase and decrease on an 11 year cycle. Since records began in 1749 there have been 22 full cycles. 2009 / 2010 is in the  23 cycle and the next solar maximum will be 2013. During periods of solar maximum the aurora can be seen far below the Arctic Circle and as far as central Europe and intense northern lights activity can interfere with radio, satellite and GPS signals sometimes shutting down networks.  The sun rotates around it's own axis once every 27 days so after a period of high northern light activity has taken place in Northern Norway it is common that after 27 days there will be another strong display of the aurora as the sun spots once again face earth.
The world's climate and the sun
The world's climate is also believed to be influenced by these solar cycles as past planet history has shown that warm and cold cycles may be linked to periods of solar maximum and minimum cycles but the total impact is still not fully understood - but I will update as I find!

Your chances of seeing the Aurora - northern lights
During autumn and winter there is a strong chance to see the aurora during the evenings. Periods of high pressure weather systems are best as they present clear cold skies, a low moon and no urban lighting is an advantage. A close look on the satellite observations of the sun are important and it is possible to forecast the aurora activity within three days accuracy as NOAA polar satellites monitor the aurora activity and solar storms on the sun.
Graham Austick.

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