Showing posts with label Gran Canaria. Show all posts
Showing posts with label Gran Canaria. Show all posts

Monday, July 16, 2012

ESA XMM-Newton X-ray Image: A magnetic monster’s dual personality

Click on the Image to watch an animation.

Is it a magnetar or is it a pulsar? A second member of a rare breed of dead, spinning star has been identified thanks to an armada of space-based X-ray telescopes, including ESA’s XMM-Newton.


Magnetars are a type of neutron star, the dead cores of massive stars that have collapsed in on themselves after burning up all their fuel and exploding as dramatic supernovas.

They typically display bright, persistent X-ray emission and the most intense magnetic fields known in the Universe.

Pulsars meanwhile are spinning neutron stars with much lower magnetic fields than magnetars that appear to pulse radio waves as they rotate rapidly.

The pulses are seen when beams of radiation rotate through our line of sight from Earth, rather like the sweeping beam of a lighthouse.

The recently discovered star appears to be a hybrid of these two stellar breeds: the spinning stellar skeleton appears as a pulsar while hiding an intense internal magnetic field much like a magnetar.

The internal field is many times stronger than its external magnetic field, leading to its entry into the new class of ‘low-field magnetars’.

As this animation illustrates, the turbulent interior arises as a result of twisted magnetic field lines.

As the field lines unwind, energy is released as a steady burst of X-rays through fractures in the star’s ‘crust’.

Only two examples of low-field magnetars are known. The first was discovered in 2010 and the second in July 2011, given away by short X-ray bursts that were detected by NASA’s Swift space telescope.

NASA’s Rossi X-Ray Timing Explorer and Chandra X-ray Observatory, ESA’s XMM-Newton and Japan’s Suzaku satellite, as well as the ground-based Gran Telescopio Canarias and the Green Bank Telescope, were alerted and the star’s activity was monitored until April 2012, during which time the outburst began to decay.

The discovery of a second member of this rare family of star strengthens the idea that magnetar-like behaviour may be much more widespread than believed in the past.

Sunday, November 13, 2011

Underwater Volcanic Eruption Canary Islands: New Island Formsimes

(Photo: REUTERS / Gobierno de Canarias)
An aerial view shows a stained area in the sea caused by submarine eruptions on the southern coast of El Hierro in the Canary Islands of Spain on Oct. 13.

A new island off the coast of El Hierro in the Canary Islands of Spain is forming as an underwater volcano spews magma 20 meters high.

The lava is being cooled by seawater and solidifying to create the land mass, which is now only 70 meters from the surface.

Seismic activity began in the area on July 17 and was followed by more than 10,000 tremors. 

Since then, underwater fissures have released an almost continuous flow of sulfurous gases, hot rock, and smoke.

Witnesses say explosions from the underwater volcano sometimes blasted as high as 20 meters above sea level.

Last week, the village of La Restinga was evacuated, and shipping has been banned in the area. The gases being released are also giving off strong sulphurous smells.

People have also reported seeing dead fish floating in the water, which were believed to have been killed by the toxic gas.

The southern tip of El Hierro was hit by a magnitude-4.3 earthquake on Nov. 5 as the volcano began spewing magma.

Wednesday, November 9, 2011

Canary Island: Calmas Sea - Underwater Volcanic ash

An underwater volcano sends ash to the surface of the sea off the Canary Island of El Hierro

Picture: EPA/SPANISH CIVIL GUARD

Tuesday, October 18, 2011

Canary Islands: Calmas Sea, Underwater Volcano eruption

An aerial view of coloured water caused by lava and gas emissions coming from the eruption of an underwater volcano in the waters of the Calmas Sea off the coast of Hierro Island, in the Canary Islands. 

Experts said the gases did not present a danger to the island's 10,000 residents.

Picture: EPA/GELMERT FINOL

Wednesday, February 3, 2010

Volcanic Hazard Map Produced For Island Of Gran Canaria


Volcanic Hazard Map Produced For Island Of Gran Canaria

Spanish and French researchers have defined the age, location, size and geochemistry of the volcanoes of Gran Canaria during the Holocene, 11,000 years ago, in order to draw up a map of volcanic hazards for the island.
The research shows that the area of greatest volcanic activity is one of the most heavily populated areas in the north east of the island, which has suffered 24 eruptions over the period studied.
The team of French and Spanish scientists led by researchers from the University of Las Palmas de Gran Canaria (ULPGC) and the "Jaume Almera" Institute of Earth Sciences (CSIC, Barcelona) combined the data from previous studies with the results of analysis of 13 new radiocarbon ages in order to gain an understanding of the history of the island and predict the areas to be struck by future volcanic eruptions.

The result, which has been published recently in the Journal of Quaternary Science, is a map of volcanic hazards for Gran Canaria, describing risk scenarios.

"We have identified 24 volcanic eruptions that took place over the past 11,000 years on Gran Canaria. We know that volcanism was concentrated in the northern sector of the island and produced small monogenetic strombolian cones (eruptions that are not very violent and which release lava and pyroclastic flows) and, occasionally, phreatomagmatic calderas (which release ash), Alejandro Rodriguez-Gonzalez, lead author of the study and a researcher at the ULPGC, tells SINC.

In order to create the map, the researchers based themselves on detailed field work, which enabled them to define the limits of the various volcanic units (cone, lava and horizontal spread of pyroclastic flows) with a great degree of exactitude, using geomorphologiccal and stratigraphic criteria.

The data now made available by the scientists makes it possible to better evaluate the scale and type of future eruptions in this area. By working out the areas, before and after, of each eruption using Digital Land Models (DLM), the researchers have developed a novel and very detailed morphometric methodology for this kind of volcanic environment.

The study started with palaeotopographical reconstructions of areas affected by recent volcanic activity. "This allows our methodology to show geomorphological changes according to volcanic type and the periods of erosion involved", explains Rodriguez-Gonzalez.