Showing posts with label earth. Show all posts
Showing posts with label earth. Show all posts

Friday, August 23, 2013

latest solar flare activity august 23 2013

Analysis of Solar Active Regions and latest solar flare activity august 23 2013from 22/2100Z to
23/2100Z: Solar activity has been at low levels for the past 24 hours.
The largest solar event of the period was a C1 event observed at
22/2207Z from Region 1828 (N14E26). There are currently 9 numbered
sunspot regions on the disk.
 
 IB.  Solar Activity Forecast: Solar activity is expected to be low with
a slight chance for an M-class flare on day one (24 Aug) and expected to
be low on days two and three (25 Aug, 26 Aug).


IIA.  Geophysical Activity Summary 22/2100Z to 23/2100Z: The geomagnetic
field has been at quiet to active levels for the past 24 hours. Solar
wind speed, as measured by the ACE spacecraft, reached a peak speed of
593 km/s at 22/2215Z. Total IMF reached 7 nT at 22/2100Z. The maximum
southward component of Bz reached -5 nT at 22/2205Z. Electrons greater
than 2 MeV at geosynchronous orbit reached a peak level of 1857 pfu.

IIB.  Geophysical Activity Forecast: The geomagnetic field is expected
to be at unsettled to minor storm levels on day one (24 Aug), quiet to
minor storm levels on day two (25 Aug) and quiet to unsettled levels on
day three (26 Aug). 
 
Solar activity was low.  Region 1820 (S12W73, Cao/beta) produced a C1 at
23/1557 UTC, which was the largest event of the period.  Region 1830
(S05W64, Dao/beta) showed minor growth while the other regions on the
disk were either stable or decaying.  A narrow coronal mass ejection
(CME) from Region 1820 was observed on LASCO C2 coronagraph imagery at
23/0048 UTC, but was not Earth-directed.

.Forecast...
Solar activity is expected to be low with a slight chance for M-class
flares on day one (24 Aug).  Solar activity is expected to be low for
days two and three (25 - 26 Aug).

Energetic Particle

.24 hr Summary...
The greater than 2 MeV electron flux at geosynchronous orbit was at
normal to high levels, reaching a maximum value of 1,860 pfu at 23/1710
UTC.  The greater than 10 MeV proton flux at geosynchronous orbit was at
background levels.

.Forecast...
The greater than 2 MeV electron flux at geosynchronous orbit is expected
to be at normal to high levels for the next three days (24 - 26 Aug). 
The greater than 10 MeV proton flux at geosynchronous orbit is expected
to remain at background levels for the next three days (24 - 26 Aug).

Solar Wind

.24 hr Summary...
Solar wind parameters, measured at ACE, were indicative of waning
coronal hole high speed stream (CH HSS) influence.  Solar wind speed
steadily decreased from initial values near 560 km/s to end-of-period
values near 475 km/s.  The total field strength ranged from 6 nT to 2 nT
while the Bz component ranged from +4 nT to -5 nT.  The phi angle
remained in a predominately positive (away) sector throughout the
period.

.Forecast...
Solar wind speed is expected to increase on day one (24 Aug) and remain
enhanced for days two and three (25 - 26 Aug) with arrival of the 21 Aug
CME and onset of a CH HSS late on day three.

Geospace

.24 hr Summary...
The geomagnetic field was at quiet to active levels.

.Forecast...
With arrival of the 21 Aug CME, the geomagnetic field is expected to be
at unsettled to G1 (Minor) geomagnetic storm levels on day one (24 Aug),
decreasing to quiet to G1 (Minor) geomagnetic storm levels on day two
(25 Aug).  Predominately quiet to unsettled conditions are expected on
day three (26 Aug) with waning CME effects and the onset of a CH HSS.

Wednesday, July 04, 2012

latest Solar flare storm and Geophysical Activity july 04 2012

M4.7 + M4.6 Flares
The 4th of July fireworks continue. A moderate solar flare reaching M4.6 peaked at 22:09 UTC Wednesday evening. The source was active Sunspot 1515. Moderate to Strong solar flares are now taking place frequently and there is now an increased chance for a major X-Class solar flare within the next 24-48 hours. Below is an updated list of today's solar flare events.


UPDATE: An impulsive solar flare reaching M4.7 was just detected at 03:36 UTC Thursday morning.

M4.7 @ 03:36 UTC - (Sunspot 1515)
M2.2 @ 02:42 UTC - (Sunspot 1515)
M2.4 @ 01:10 UTC - (Sunspot 1515)
M4.6 @ 22:09 UTC - (Sunspot 1515)
M1.8 @ 16:39 UTC - (Sunspot 1513) "Earth directed CME possible"
M2.3 @ 12:24 UTC - (Sunspot 1515)
M5.3 @ 09:55 UTC - (Sunspot 1515) "Non Earth directed CME generated"

Updated 7/4/2012 @ 23:10 UTC
Sunspot 1513 Erupts
Yet another M-Class flare, however this time it was centered around Sunspot 1513 in the northern hemisphere. The latest event measured M1.8 @ 16:39 UTC. A nice eruption is captured by SDO below.

Tuesday, April 10, 2012

Should we be worried about Earth's magnetic poles


Compass
(Photo: DNY59/iStockphoto)
The end of the world as we know it could come in any number of ways, depending on who you ask. Some people believe global cataclysm will occur when Earth's magnetic poles reverse. When north goes south, they say, the continents will lurch in one direction or the other, triggering massive earthquakes, rapid climate change and species extinctions.
The geologic record shows that hundreds of pole reversals have occurred throughout Earth's history; they happen when patches of iron atoms in Earth's liquid outer core become reverse-aligned, like tiny magnets oriented in the opposite direction from those around them. When the reversed patches grow to the point that they dominate the rest of the core, Earth's overall magnetic field flips. The last reversal happened 780,000 years ago during the Stone Age, and indeed there's evidence to suggest the planet may be in the early stages of a pole reversal right now.
But should we really fear this event? What will actually happen when north-pointing compasses make a 180-degree turn toward Antarctica? Will the continents tear themselves apart, or are we in store for much more mundane changes?
Weak field
"The most dramatic changes that occur when the poles reverse is a very large decrease of the total field intensity," said Jean-Pierre Valet, who conducts research on geomagnetic reversals at the Institute of Earth Physics of Paris. [5 Ways the World Will Change Dramatically this Century]
Earth's magnetic field takes between 1,000 and 10,000 years to reverse, and in the process, it greatly diminishes before it re-aligns. "It's not a sudden flip, but a slow process, during which the field strength becomes weak, very probably the field becomes more complex and might show more than two poles for a while, and then builds up in strength and [aligns] in the opposite direction," said Monika Korte, the scientific director of the Niemegk Geomagnetic Observatory at GFZ Potsdam in Germany.
The scientists say it's the weak in-between phase that would be roughest on Earthlings.
According to John Tarduno, professor of geophysics at the University of Rochester, a strong magnetic field helps protect Earth from blasts of radiation from the sun. "Coronal mass ejections (CMEs) occasionally occur on the Sun, and sometimes hurtle directly toward Earth," Tarduno said. "Some of the particles associated with CMEs can be blocked by Earth's magnetic field. With a weak field, this shielding is less efficient."
The charged particles bombarding Earth's atmosphere during solar storms would punch holes in Earth's atmosphere, and this could hurt humans. "Ozone holes, like that over Antarctica (which today are due to an entirely different cause related to man) could form as solar particles interact with the atmosphere in a cascade of chemical reactions. These 'holes' would not be permanent, but might be present on one- to 10-year timescales — arguably important enough to be a concern in terms of skin cancer rates," Tarduno said. [Will Sunscreen Protect You from the Upcoming Solar Flares?]
Valet agrees that a weak magnetic field could lead to the formation of ozone holes. He wrote a paper last year proposing a direct link between the demise of Neanderthals, our evolutionary cousins, and a significant decrease of the geomagnetic field intensity that occurred exactly at the same period. (That time, the lead-up to a geomagnetic reversal appears to have been "aborted"; the field weakened but didn't end up flipping.)
Other scientists aren't convinced that there's a connection between pole reversals and species extinctions. "Even if the field becomes very weak, at the Earth's surface we are shielded from radiation by the atmosphere. Similarly as we cannot see or feel the presence of the geomagnetic field now, we most likely would not notice any significant change from a reversal," Korte said.
Our technology definitely would be in danger, however. Even now, solar storms can damage satellites, cause power outages and interrupt radio communications. "These kinds of negative influences clearly will increase if the magnetic field and thus its shielding function became significantly weaker, e.g. during a reversal, and it will be important to find mitigation strategies," she told Life's Little Mysteries.
One additional worry is that a weakening and eventual reversal in the field would disorient all those species that rely on geomagnetism for navigation, including bees, salmon, turtles, whales, bacteria and pigeons. There is no scientific consensus on how those creatures would cope.
Continental shifts?
Many of the disaster scenarios associated with geomagnetic pole reversals in popular imagination are pure fantasy, the scientists said. There definitely won't be any break-up or shift of the continents.
The first proof is the geologic record. When the last pole switch happened, "no worldwide shifting of continents or other planet-wide disasters occurred, as geoscientists can testify to from fossil and other records," said Alan Thompson, head of geomagnetism at the British Geological Survey.
The scientists explained that changes in the Earth's liquid core happen on a completely different distance and timescale than convection in the Earth's mantle (which causes Earth's tectonic plates to shift, moving the continents). The liquid core does indeed touch the bottom of the mantle, but it would take tens of millions of years for changes in the core to propagate up through the mantle and influence the motion of the tectonic plates. In short, "there is no evidence from the geological past and in my opinion also no conceivable method that magnetic reversals could trigger Earthquakes," Korte said.
Sooner or later
The geomagnetic field is currently weakening, possibly because of a growing patch of reverse-alignment in the liquid core deep beneath Brazil and the South Atlantic. According to Tarduno, the strength of Earth's magnetic field "has been decreasing for at least 160 years at an alarming rate, leading some to speculate that we are heading toward a reversal."
The reversal might happen, or it might be aborted — Earth is too complex a system for scientists to know which outcome to expect. Either way, the process will drag on over the next few thousand years, giving us time to adjust to the changes.