July 2012 solar storm

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Short description: Notable coronal mass ejection

Template:Infobox solar storm

On July 23, 2012 at 02:08 UTC, a solar storm involving an unusually large and strong coronal mass ejection occurred. It missed Earth by a margin of roughly nine days, as the Sun's equator rotates around its own axis once over a period of about 27 days.[1] The region that produced the outburst was thus not pointed directly towards Earth at that time. The strength of the eruption has been predicted to be comparable to the 1859 Carrington Event that caused damage to electrical equipment worldwide, which at that time consisted mostly of telegraph systems.[2] Had it hit Earth, it is believed that the storm would have caused widespread technological damage.

Overview

File:STEREOAEUVI304ACOR2 HD1080.webm At 02:08 UT on 23 July 2012, a large coronal mass ejection (CME) was launched from the Sun.[3] The eruption emanated from solar active region 11520 and coincided with what was at most an X2.5-class solar flare.[4] The CME expelled a pair of adjacent magnetic clouds that drove a fast-moving shock wave outward from the Sun.[3] The eruption tore through Earth's orbit, hitting the STEREO-A spacecraft.[2] The spacecraft is a solar observatory equipped to measure such activity, and because it was far away from the Earth and thus not exposed to the strong electrical currents that can be induced when a CME hits the Earth's magnetosphere,[2] it survived the encounter and provided researchers with valuable data. Spacecraft observations recorded the shock wave at 20:55 UTC on 23 July while the magnetic clouds arrived two hours later. The leading shock wave associated with the CME was traveling radially at a speed of around 3,300 km/s (2,100 mi/s) relative to STEREO-A by the time it reached the spacecraft. The CME traveled from the Sun to Earth's orbit in about 20.78 hours, indicating an average speed of 2,000 km/s (1,200 mi/s).[3]

Based on the collected data, the eruption consisted of two separate ejections which were able to reach exceptionally high strength as the interplanetary medium around the Sun had been cleared by a smaller CME four days earlier.[2] Interaction between the primary CME and the preceding CMEs as they traversed the interplanetary medium also led to amplification of the magnetic field of the ejecta that continued by the time the primary CME reached Earth's orbit.[5]

The event occurred at a time of high sunspot activity during solar cycle 24.

Predicted effects

Had the CME hit Earth, it is likely that it would have inflicted serious damage to electronic systems on a global scale.[2] The resulting geomagnetic storm may have had a strength of −1,150 to −600 nanotesla (0.01-0.005 Gauss), comparable to the impact of the Carrington Event.[5] A 2013 study estimated that the economic cost to the United States would have been between US$600 billion and $2.6 trillion.[6] Ying D. Liu, professor at China's State Key Laboratory of Space Weather, estimated that the recovery time from such a disaster would have been about four to ten years.[7]

Widespread power outages likely would have followed. There would have been similar disruptions to plumbing and water supplies, which rely on electric pumps.[2] Satellite communication would have been impacted, as well as other radio and GPS disruptions occurring.[8] The peripheral effects would have included the loss of perishable foods and medications, climate control systems, phone and communication services, and the ability to dispense fuel.[9]

Historical comparisons

The event occurred in 2012, near the local maximum of sunspots that can be seen in this graph.

Had the event impacted Earth at the same time it occurred, it would have resulted in a geomagnetic storm of comparable strength to the Carrington Event, with a strength around −700 to −800 nanotesla. Had the event happened around the equinox, it likely would have been much stronger, around −1200 nanotesla.[10] The solar cycle involved was near its maximum, but it was relatively weak in comparison to previous solar cycles.[10]

The record fastest CME associated with the August 1972 solar storm is thought to have occurred in a similar process of earlier CMEs clearing particles in the path to Earth. This storm arrived in 14.6 hours, an even shorter duration after the parent flare erupted than for the great solar storm of 1859.

See also

References

  1. ↑ Williams, David R. (1 July 2013). "Sun Fact Sheet". Goddard Space Flight Center. http://nssdc.gsfc.nasa.gov/planetary/factsheet/sunfact.html. 
  2. ↑ 2.0 2.1 2.2 2.3 2.4 2.5 Phillips, Tony (23 July 2014). "Near Miss: The Solar Superstorm of July 2012". NASA. https://science.nasa.gov/science-news/science-at-nasa/2014/23jul_superstorm. 
  3. ↑ 3.0 3.1 3.2 Riley, Pete; Caplan, Ronald M.; Giacalone, Joe; Lario, David; Liu, Ying (26 February 2016). "Properties of the fast forward shock driven by the 2012 July 23 extreme coronal mass ejection". The Astrophysical Journal 819 (1): 57. doi:10.3847/0004-637X/819/1/57. https://iopscience.iop.org/article/10.3847/0004-637X/819/1/57. 
  4. ↑ Riley, Pete; Baker, Dan; Liu, Ying D.; Verronen, Pekka; Singer, Howard; Güdel, Manuel (February 2018). "Extreme Space Weather Events: From Cradle to Grave". Space Science Reviews 214 (1): 21. doi:10.1007/s11214-017-0456-3. Bibcode: 2018SSRv..214...21R. 
  5. ↑ 5.0 5.1 Liu, Ying D.; Luhmann, Janet G.; Kajdič, Primož; Kilpua, Emilia K.J.; Lugaz, Noé; Nitta, Nariaki V.; Möstl, Christian; Lavraud, Benoit et al. (18 March 2014). "Observations of an extreme storm in interplanetary space caused by successive coronal mass ejections". Nature Communications 5 (1): 3481. doi:10.1038/ncomms4481. PMID 24642508. Bibcode: 2014NatCo...5.3481L. 
  6. ↑ Lloyd's (2013). Solar Storm Risk to the North American Electric Grid (Report). https://assets.lloyds.com/assets/pdf-solar-storm-risk-to-the-north-american-electric-grid/1/pdf-Solar-Storm-Risk-to-the-North-American-Electric-Grid.pdf. Retrieved 2023-09-16. 
  7. ↑ Sanders, Robert (18 March 2014). "Fierce solar magnetic storm barely missed Earth in 2012". UC Berkeley News Center. http://newscenter.berkeley.edu/2014/03/18/fierce-solar-magnetic-storm-barely-missed-earth-in-2012/. Retrieved 10 January 2015. 
  8. ↑ Kennedy, Maev (July 25, 2014). "'Extreme solar storm' could have pulled the plug on Earth" (in en-GB). The Guardian. ISSN 0261-3077. https://www.theguardian.com/science/2014/jul/25/extreme-solar-storm-sun-earth. 
  9. ↑ Landen, Xander (July 26, 2014). "Solar 'superstorm' missed Earth in 2012 -- but another could strike". https://www.pbs.org/newshour/science/two-years-ago-intense-solar-storm-barely-misses-earth. 
  10. ↑ 10.0 10.1 Baker, D. N.; Li, X.; Pulkkinen, A.; Ngwira, C. M.; Mays, M. L.; Galvin, A. B.; Simunac, K. D. C. (2013). "A major solar eruptive event in July 2012: Defining extreme space weather scenarios" (in en). Space Weather 11 (10): 585–591. doi:10.1002/swe.20097. ISSN 1542-7390. https://onlinelibrary.wiley.com/doi/abs/10.1002/swe.20097. 




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