Tuesday, March 9, 2010

SDSU - Department of Geological Sciences -Seminar - Stephen Self

Quoted from http://www.geology.sdsu.edu/seminars/spring10/03_17_10.html
SDSU - Department of Geological Sciences -Seminar - Stephen Self



Super-eruptions:Volcanic Activity with a Global Impact

Stephen Self

Volcano Dynamics Group
Department of Earth Science
The Open University
Senior Volcanologist, US NRC


Wednesday, March 17th, 2010


Every now and again, Earth suffers from tremendous explosive volcanic eruptions, much bigger than those witnessed in modern times. Although the return period for such events is long, perhaps every 10-100,000 years depending on the size, it is statistically more likely that Earth will next experience a large super-eruption (defined here as one producing more than ~ 450 km3 of rhyolitic magma) than a large meteorite impact. Depending on where the volcano is located, the effects of such an event will be felt worldwide, or at least by a whole hemisphere, and the associated phenomena will spread quickly within a couple of weeks. These effects include temporary darkness with severe reduction in amounts of solar radiation reaching the surface, unseasonal cooling and warming coupled with strange weather patterns, and, of course, widespread ash fallout. Major disruptions of services that our society depends upon can be expected for periods of months, to even a few years.


Past explosive super-eruptions, including the latest very large one, the Toba event in Sumatra 74,000 years ago, will be discussed, as well as some of the impacts of such events. Another type of super-eruption has also affected our world, but at times in the distant past. These are flood basalt events, vast lava flow-producing eruptions that have occurred in 1-2 million-year-long episodes throughout Earth history. Such events have occurred every few tens of million-years or so and seem somehow to be related to mass extinctions of life on Earth. Possible linkages between these two time-series of events will also be discussed.


The environmental effects of the largest historic eruptions, such as Tambora and Laki, can be usefully used as small-scale analogs for the impact of much greater volcanic events. The Laki (Iceland) eruption, which can be viewed as a small-scale flood basalt analog, took place at a high latitude and impacted the whole northern part of the North Hemisphere for several years. We must ask: Is our global society ready for the next super-eruption?

Dr. Self has studied volcanic rocks in many parts of the world, concentrating on the products of explosive eruptions, large (flood) lava effusions, and the impact of volcanism on the atmosphere. His research interests include mechanisms and deposits of super-eruptions. Dr. Self holds visiting professorships at The Open University, United Kingdom, and the University of Hawaii. He was formerly chair in volcanology at The Open University (2001-2007) and past leader of the U.K.'s Volcanic and Magmatic Studies Group. Dr. Self is a fellow of the Geological Society, London, member of the American Geophysical Union, and life member of the International Association of Volcanology and Chemistry of Earth's Interior. He is the author of numerous papers and articles in both specialty, and more general, scientific journals.

The Daily Aztec - New joint doctoral programs

Quoted from http://www.thedailyaztec.com/city/new-joint-doctoral-programs-1.2184938:

The Daily Aztec - New joint doctoral programs

New joint doctoral programs

By Janel Bruan, Contributor

Published: Tuesday, March 9, 2010

Updated: Tuesday, March 9, 2010

Glenn Connelly / Photo Editor

San Diego State will soon offer two new joint doctoral programs, evolutionary biology and geophysics. Both programs are accepting students for next semester.

San Diego State is classified as a doctoral research university, and for a good reason.
Evolutionary biology and geophysics have joined the ranks as two new joint doctoral programs after being approved late last month.


It’s been 50 years since the creation of the Master Plan for Higher Education in California, which reserved the granting of doctoral degrees for the UC system and assigned the CSU system to train students at the master’s level. The caveat, which SDSU has taken advantage of, is that the plan allows CSUs to partner with doctoral-granting universities to create joint doctoral programs.


The first joint doctoral program was established in 1964 between chemists at SDSU and UCSD. The two universities created a partnership that allowed others that weren’t permitted to issue a doctoral degree the opportunity to join with them. The Ph.D.’s issued would be given through both universities simultaneously.


Sixteen joint doctoral programs have been established between CSU and UC schools, 14 of which are at SDSU. The last full program to be approved was computational sciences with Claremont Graduate University in 2002.


“The Ph.D. programs are a defining feature of SDSU,” Vice President for Research and Dean of Graduate Affairs Thomas Scott, Ph.D., said.


Whereas the Carnegie Foundation for the Advancement of Teaching classifies the other 22 CSUs as masters institutions, it classifies SDSU as a doctoral research university with high research activity, according to Scott.


Evolutionary biology is offered as a joint program with UC Riverside.


“Southern California is internationally recognized as an area with one of the world’s greatest biodiversity,” Annalisa Berta, program coordinator for the SDSU / UC Riverside joint doctoral program, said.  “We have a very strong Masters of Science program in evolutionary biology and we wanted to build on that to offer talented doctoral students the opportunity of coming to SDSU to study molecular evolution, genomics, paleontology, population biology and systematic.”


Each program has its own curriculum. Students who will take evolutionary biology will spend their first year at SDSU and the next year at UC Riverside taking classes as well as working in the lab. The remaining years will be spent back at SDSU working on their research.


“Evolutionary biology is a very broad, diverse field,” Berta said.  “It is especially relevant in society today. We know we are losing biodiversity due to human activities. In order to know what we’re losing we have to know what we have that is how to generate and maintain biodiversity.”


Berta said the program will also offer training in comparative genomics, which is the study of gene structures of different species and allows the study of the evolution of infectious diseases.


Students in the geophysics program will be collaborating with the Scripps Institute of Oceanography at UC San Diego.


Both programs took about 10 years to develop and proceed through all the levels of academic administrative review.


“The Ph.D. programs drive the designation of being a doctoral research university,” Scott said. “The faculty members from the Ph.D. programs are the ones that bring the disproportionate amount of our external funding that allows research to thrive. They really are the driving force behind what has become a major research university. It’s critically important for us to keep these healthy and continue to develop them as much as we can.”


Evolutionary biology and geophysics are both accepting students for next fall.


SDSU is currently in the process of developing more joint doctoral programs, according to Scott.

San Diego State University - Department of Geological Sciences - Joint Doctoral Program in Earthquake Science and Applied Geophysics

Quoted from http://www.geology.sdsu.edu/jdp/:

San Diego State University - Department of Geological Sciences - Joint Doctoral Program in Earthquake Science and Applied Geophysics

Geophysics
Earthquake Science and Applied Geophysics
Joint Doctoral Program

A new, challenging program of graduate study leading to a Joint Ph. D. in Geophysics has been initiated by the University of California, San Diego, Scripps Institution of Oceanography and San Diego State University. The program will start in the Fall of 2010.

THE PROGRAM
A joint graduate group from the Geophysics Program of Scripps Institution of Oceanography at the University of California, San Diego (UCSD) and the Department of Geological Sciences at San Diego State University (SDSU) will offer a Joint Doctoral Program in Geophysics beginning in fall 2010. The complementary specialties and ongoing, vigorous collaborations between the two groups result in two focus areas: earthquake science and applied geophysics. Integrating geophysics at UCSD and SDSU will provide outstanding opportunities for students to develop the skills needed to address important local, regional, and global societal problems where geophysics can contribute to the solutions. Strong capabilities will be in:

  1. earthquake-hazard investigations (incorporating tools such as observational and computational seismology, airborne and satellite-based geodesy and remote sensing, and earthquake geology), and
  2. energy, resource, and environmental exploration methods (mainly land and marine seismology and electromagnetics).

Graduates of the program will be prepared to begin rewarding geophysics careers and assume leadership roles as university faculty, government scientists, and industry researchers. Joint UCSD and SDSU committees will administer and monitor the admission, advising, evaluation, graduation, and all other academic processes related to the joint doctoral program. Students will spend at least one academic year of residency at each campus. A Doctor of Philosophy (Ph. D.) degree in Geophysics will be awarded upon completion of the program in the names of The Regents of the University of California on behalf of the UCSD and The Trustees of the California State University on behalf of SDSU. The SDSU graduate cataloque description of the program can be viewed here pdf.

THE COMMUNITY
Scripps Institution of Oceanography at UCSD is located on the Pacific Ocean in La Jolla, California 24 kilometers from SDSU which is 19 kilometers east of downtown San Diego. San Diego enjoys a reputation for a highly desirable climate and life style. There are major cultural attractions such as music, dance, and theater performances and galleries exhibiting all types of visual works of art. San Diego is also well-known for its museums, theme parks, and a world-class zoo. Major spectator and participant sports abound at both the professional and amateur levels. The near-by ocean, mountains, and deserts provide an unusually diverse variety of yearround outdoor activities.

THE UNIVERSITIES
More than 33,000 students make SDSU one of the largest schools in the 23-campus California State University System. SDSU is unique within the system because of its large research effort and 16 joint doctoral programs. SDSU was ranked the number one small research university in the nation by Academics Analytics using the faculty scholarly productivity (FSP) index. This index ranks UCSD as 11th in the large research university category. UCSD has over 22,000 students and ranked 7th in the 2008 U. S. News and World Report ratings of the country’s top public national universities; within the geophysics and seismology specialty, the UCSD Scripps program ranked 5th overall.

FINANCIAL SUPPORT
Annual stipends will be provided for all joint Ph. D. students, as will be the full cost of tuition. Students will also receive complete health benefit packages.

Prospective students for Fall 2010 are encouraged to send their inquiries to: Steven Day
Department of Geological Sciences
San Diego State University
San Diego, CA 92182-1020
day@moho.sdsu.edu

Thursday, March 4, 2010

Temblor in Chile gives California insight - SignOnSanDiego.com

Quoted from http://www.signonsandiego.com/news/2010/mar/04/temblor-in-chile-gives-california-insight-on/:

Temblor in Chile gives California insight - SignOnSanDiego.com

Temblor in Chile gives California insight

By Scott LaFee, UNION-TRIBUNE STAFF WRITER

Thursday, March 4, 2010 at 12:59 a.m / AP

Soldiers patrol in Concepcion , Chile, Wednesday, March 3, 2010. An 8.8-magnitude earthquake struck central Chile early Saturday. The government sent soldiers and ordered a 6 p.m. to -noon curfew to quell looting. (AP Photo/ Natacha Pisarenko)

When an earthquake is powerful enough to shift Earth’s axis, even the toughest building codes in the world won’t stand tall.

The Saturday temblor in Chile registered a magnitude of 8.8. It was the world’s fifth-largest quake since 1900, strong enough to tweak the planet’s axis more than 3 inches and speed its spin ever so slightly.

Chile’s stringent building codes appear to have limited the quake’s worst effects to mostly older, seismically susceptible structures. They also may have provided a peek into how California might fare in a massive temblor.

In dealing with their long, mutual history of unsettled ground, Chile and California have created some of the toughest, most rigorously enforced seismic building codes and design standards in the world. But those rules and laws are no guarantee of safety, scientists and engineers said.

“People think the codes are intended to eliminate damage. They aren’t,” said Tom Rockwell, a professor of geological sciences at San Diego State University. “They’re meant to mitigate collapse and death. If we have a large earthquake, there will be damage. The hope is that it will not be deadly or catastrophic.”

Earthquake standards and building codes in California reflect an always-evolving assessment of risk and the function and value of different kinds of infrastructure, said Jorge Meneses, chairman of the seismic and geohazards practice group in the San Diego offices of Kleinfelder Inc., a national construction and engineering company.

The degree of acceptable damage depends on the structure’s importance, he said.

While modern homes may not crumble in a temblor, they could still suffer irreparable damage and have to be torn down, Meneses said. “Things like bridges, highways and hospitals are designed to withstand some damage and remain operating because they are vital to any recovery. And something like a nuclear power plant is extremely engineered because even the smallest amount of damage might have catastrophic consequences.”

Then there are the older structures.

“Some people think we don’t have ‘bad buildings’ in California,” said Richard McCarthy, director of the state’s Seismic Safety Commission. “We have thousands of them — structures made of unreinforced masonry or concrete or built to now-inadequate standards and not retrofitted. They’re all vulnerable to coming down.”

A major temblor in California is inevitable.

The U.S. Geological Survey said there’s a more than 99 percent chance that one or more quakes with a magnitude of at least 6.7 will occur somewhere in the state during the next 30 years. The chance of a quake registering 7.5 or greater in that time is 46 percent, and the epicenter would most likely be in Southern California.

But a “Big One” in California would not be like a big quake in Chile. The southern San Andreas fault zone, which extends from the Salton Sea to the town of Parkfield in Monterey County, poses the greatest seismic threat. But it isn’t capable of producing a magnitude-8.8 temblor, seismologists said.

California’s plate tectonics differ fundamentally from Chile’s. The San Andreas fault grinds horizontally rather than subducting — one plate diving below another. Also, the planet’s crust below California is thinner.

“To get a really big quake, you need a very large area and a lot of displacement,” Rockwell said. “The crust (beneath California) isn’t thick enough. Even in a worst-case scenario, I don’t think we would see anything larger than an 8.0 or 8.1.”

California has recorded just two earthquakes approaching magnitude 8: the 7.9 Tejon quake in 1857 and the 7.8 San Francisco quake in 1906.

Locally generated quakes tend to be much smaller, in the range of magnitude 3 to 5, though some active offshore fault zones may be capable of generating quakes of up to 7.7.

The deeper, stronger temblors in Chile often last for up to two minutes, while California quakes typically persist for 10 to 15 seconds, said Frieder Seible, dean of the Jacobs School of Engineering at the University of California San Diego and an international expert on bridge and highway seismic safety.

Still, researchers such as Seible said every strong quake is potentially devastating and that most offer new insights. Both the magnitude-6.9 Loma Prieta temblor in 1989, which killed 63 people and caused $6 billion in damage, and the 6.7 Northridge quake in 1994, which killed 72 people and caused $20 billion in damage, resulted in significant revisions to seismic standards and building codes.

Earthquake damage is essentially the result of seismic motions beneath a structure, the nature of the soil it was built on and its construction.

In the Loma Prieta quake, 42 people died when a half-mile portion of the Cypress Freeway collapsed. The section had been constructed on man-made fill layered over soft mud. Adjacent sections of the freeway, built upon older, firmer sand and gravel deposits, didn’t collapse.

“We learn new things after every quake, and much of it has been implemented, such as the huge, $16 billion retrofitting effort of bridges and highways since 1989,” said Jose Restrepo, a UCSD professor of structural engineering. “I think new homes, too, are now well-constructed and would perform OK in a quake.”

Scott LaFee: (619) 293-1259; scott.lafee@uniontrib.com

Friday, February 26, 2010

An earthquake would be our “Katrina” :: The Fallbrook Village News

Quoted from http://www.thevillagenews.com/story/45720/:

An earthquake would be our “Katrina” :: The Fallbrook Village News

An earthquake would be our “Katrina”


Thursday, February 25th, 2010.
Issue 08, Volume 14.

We are aware of the devastation associated with a mega mine like Liberty quarry. One subject, however, has been glossed over; earthquakes.

The Elsinore fault runs along the hills next to the proposed quarry site. Scientists say, "If you are not sure it will not cause harm, don’t do it."

Geologists and seismologists agree; earthquakes are induced in five major ways. Three ways are, "fluid extraction from the earth, mining or quarrying." ("New Dawn" magazine)

Studies by Dr. Klose of Columbia University show excavating the earth’s crust to a depth of over 1000 feet may cause earthquake faults to become active.

Tom Rockwell, SDSU geologist and expert on the Elsinore fault zone, stated, "Scientists believe the Elsinore could trigger a quake big as 7.5."

Scientists with Southern California Earthquake Center say, "There is an 11 percent chance over the next 30 years this fault will trigger an earthquake paralleling Northridge.

Mary Moreland, Riverside County Emergency Services Director, said, "Disaster officials fear a major quake. An earthquake would be our ‘Katrina.’"

Lucy Jones, lead Southern California Scientist for U.S. Geology Survey, Pasadena, said, "The smaller Elsinore fault poses a threat locally in Southwest Riverside County. The Elsinore sits under Temecula and Murrieta.

With some of these perceived natural occurrences (exception being quarries) could it be that we, as humans, are not managing the earth properly and, when earthquakes occur, we have forgotten about "cause and effect?"

"We learn geology the morning after the earthquake." (Emerson)

Jerri Arganda

Monday, February 22, 2010

SDSU - Department of Geological Sciences Alumni Field Trip 2010





24th. ANNUAL SDSU GEOLOGY FIELD TRIP
LANDSLIDES IN THE VICINITY OF CLARK LAKE & COYOTE MOUNTAIN, ANZA BORREGO STATE PARK
MARCH 26TH, 27TH & 28TH, 2010



The 24th Annual SDSU Geology Alumni Field Trip/Campout will be in Anza Borrego State Park this year. Nissa Morton, a graduate student at SDSU, working for Dr.Tom Rockwell on the San Jacinto Fault and Mike Hart, San Diego's Planetary/Local Landslide Expert, will be leading this year's trip. Clark Lake was not accessible except by kayak as of February 1st, 2010 so itinerary may vary depending on future storm events.



Seismic activity serves as a major trigger for land-sliding in areas of steep topography. Northeast of Borrego Springs, large, deep-seated landslides have occurred in granitic and metamorphic rock on Coyote Mountain and along the southwestern side of the Santa Rosa Mountains. This area is located within a complex zone of conjugate strike-slip faulting that is locally defined by activity on the Coyote Creek, Coyote Mountain, and Clark faults along with several northeast-striking cross faults. The field trip will examine the geomorphic and structural features of these landslides and consider the failure mechanisms needed to produce them.



The Field Trip will start Saturday Morning March 27th, 2010 at 10:00 AM on top of the Visitors Center at the Anza Borrego State Park Headquarters. Look for the flagpole, just past the flagpole coming from the parking lot there is a path to your right that leads you on top of the visitor's center. We will do some arm-waving there and then caravan/carpool out to the base of Coyote Mountain and hike up to examine the morphology of the landslides so plan on packing a lunch. Sunday, if the lake level is low enough to allow vehicles to pass (4-Wheel Drive recommended for this part of trip), we will go up towards Rockhouse Canyon to look at more landslides and possibly some petroglyphs. If the lake level is still high and you have not been to the visitors center I think you will enjoy just hanging around there for a couple of hours and maybe taking your time driving home to look for wildflowers.



We will be camping at the main Borrego Palm Canyon Campground just west of the town of Borrego Springs. The Alumni Group will have one Group site reserved for Friday, Saturday and Sunday night and one additional site for Saturday Night. I cannot guarantee additional spaces nearby so you may have to occupy and pay for individual sites near the Group Camp Ground if we have a large crowd. There are restrooms and solar showers close to the Group Site but you need quarters for the showers so plan ahead! Please observe all Park Rules Regulations which are posted at each site. Each site has several tables, BBQ and fire ring for burning wood (not provided so bring your own). Highs and lows in late March can be in the mid 80's down to the high 40's so be prepared.



DIRECTIONS: Hopefully you can find your way to Borrego Springs!? >From the traffic circle just go west and watch for signs to main campground or visitor center depending on where you are headed.



COMMUNICATIONS: There appears to be phone service in much of the campground but you may need to walk around a bit to find it. If you have a Family Radio Service (FRS) radio we will be monitoring channel 11with no Private Tones programmed in them. The Palomar Amateur Radio Repeater, 147.030 + (103.7 pl) and 2 Meter simplex 146.520 will also be monitored.



SUPPLIES/SERVICES/FUEL: All are available in Borrego Springs 7 days a week during normal business hours as per John Petersen an SDSU Alumni who now is the proud owner of his “Second Home” in Borrego Springs.



If any of our Alumni are interested in becoming involved with any of our Alumni Activities, like to assist with future trips or has a special place in mind that would be good for a future Alumni Field Trip please let me know. If you have any questions regarding this trip email or call me. Joe Corones, Alumni Field Trip Chairman. jcorones@gmail.com , Home (858)-484-3582, Cell (858)-603-5545.

Tuesday, February 9, 2010

SDSU - Department of Geological Sciences -Seminar - Anthony J. Park

Quoted from http://www.geology.sdsu.edu/seminars/spring10/02_10_10.html:

SDSU - Department of Geological Sciences -Seminar - Anthony J. Park

Patterned mineral deposits on Earth and Mars

Anthony J. Park
Sienna Geodynamics and Consulting, Inc.
Computational Science Research Center (CSRC), San Diego State University
Wednesday, February 10th, 2010








Patterned Mineral Deposits on Earth and Mars

Well-exposed Jurassic Navajo Sandstone iron oxide concretions preserve important diagenetic records of groundwater flow and water–rock interactions. Field relationships, precipitation patterns, and geometries of the Navajo concretions provide the basis for input parameters in numerical computer simulations and laboratory chemical bench tests. Although field geometries are very difficult to replicate, numerical simulations and laboratory experiments examine end results such as nucleation and growth of iron oxide concretions, produced from known input parameters. Three numerical simulations show the development of periodic self-organized nucleation centers through Liesegang-type double-diffusion of iron and oxygen. This numerical model simulates a scenario where oxygen is provided by shallow fresh water and iron is sourced from deeper reduced formation water. Concretions form in the region where the two waters interact with each other. Model sensitivities show that advection of water is an important mechanism for supplying the iron, and that acidic conditions in the iron-charged water can cause iron to stay in solution longer to produce nucleation centers that are farther from the input source. Laboratory bench tests with reactions of FeSO4 or Fe(NO3)3 with KOH show how the precipitation of hydrated iron sulfates or iron-hydroxides may form rinds around an initial, spherical source of iron (i.e. nucleation center). These rinds may show inward growth depending on the concentration of the iron source in relation to the surrounding fluid. A number of complex factors such as concentration and flux, time, and multiple events can create banded patterns during rind growth. Comparisons of the terrestrial examples with numerical and laboratory models have strong implications for understanding similar hematite concretions on Mars.

MarsEarth