Are the Northern Lights dangerous? - Fabio Pacucci

489,673 views ・ 2022-03-31

TED-Ed


Please double-click on the English subtitles below to play the video.

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On September 1st, 1859, miners following the Colorado gold rush woke up
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to another sunny day.
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Or so they thought.
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To their surprise, they soon discovered it was actually 1 am;
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and the sky wasn’t lit by the Sun, but rather by brilliant drapes of light.
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The blazing glow could be seen as far as the Caribbean,
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leading people in many regions to believe that nearby cities had caught fire.
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But the true cause of what would come to be known as the Carrington Event
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was a solar storm— the largest in recorded history.
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Solar storms are one of many astrophysical phenomena caused by magnetic fields.
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These fields are generated by movements of electrically charged particles
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like protons and electrons.
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For example, Earth’s magnetic field is generated by charged molten metals
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circulating in the planet's outer core.
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Similarly, the Sun’s magnetic field is generated by large convective movements
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in the plasma that composes the star.
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As this plasma slowly swirls,
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it creates areas of intense magnetic activity called sunspots.
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The magnetic fields that form near these regions
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often become twisted and strained.
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And when they’re stretched too far, they snap into simpler configurations,
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releasing energy that launches plasma from the Sun’s surface.
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These explosions are known as coronal mass ejections.
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The plasma— mostly made of protons and electrons— accelerates rapidly,
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quickly reaching thousands of kilometers per second.
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A typical coronal mass ejection covers the distance between the Sun and the Earth
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in just a couple of days,
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flowing along the magnetic field that permeates the solar system.
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And those that cross the Earth’s path are drawn to its magnetic field lines,
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falling into the atmosphere around the planet’s magnetic poles.
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This tidal wave of high-energy particles excites atmospheric atoms
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such as oxygen and nitrogen,
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causing them to rapidly shed photons at various energy levels.
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The result is a magnificent light show we know as the auroras.
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And while this phenomenon is usually only visible near the Earth’s poles,
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strong solar storms can bring in enough high energy particles
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to light up large stretches of the sky.
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The magnetic fields in our solar system are nothing
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compared to those found in deep space.
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Some neutron stars generate fields 100 billion times stronger
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than those found in sunspots.
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And the magnetic fields around supermassive black holes
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expel jets of gas that extend for thousands of light years.
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However, on Earth, even weak solar storms can be surprisingly dangerous.
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While the storms that reach us are generally harmless to humans,
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the high-energy particles falling into the atmosphere
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create secondary magnetic fields,
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which in turn generate rogue currents that short-circuit electrical equipment.
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During the Carrington Event,
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the only widespread electrical technology was the telegraph.
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But since then, we've only become more dependent on electrical systems.
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In 1921, another powerful solar storm caused telephones
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and telegraph equipment around the globe to combust.
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In New York, the entire railway system was shut down and fires broke out
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in the central control building.
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Comparatively weak storms in 1989 and 2003
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turned off regions of the Canadian power grid
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and damaged multiple satellites.
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If we were hit by a storm as strong as the Carrington Event today,
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it could devastate our interconnected, electrified planet.
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Fortunately, we're not defenseless.
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After centuries of observing sunspots,
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researchers have learned the Sun’s usual magnetic activity
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follows an 11-year cycle,
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giving us a window into when solar storms are most likely to occur.
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And as our ability to forecast space weather has improved,
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so have our mitigation measures.
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Power grids can be shut off in advance of a solar storm,
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while capacitors can be installed to absorb the sudden influx of energy.
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Many modern satellites and spacecraft are equipped with special shielding
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to absorb the impact of a solar storm.
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But even with these safeguards,
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it’s hard to say how our technology will fare during the next major event.
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It’s possible we’ll be left with only the aurora overhead
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to light the path forward.
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