Scientists study the past frequency of large earthquakes in order to
determine the future likelihood of similar large shocks. For example, if
a region has experienced four magnitude 7 or larger earthquakes during
200 years of recorded history, and if these shocks occurred randomly in
time, then scientists would assign a 50 percent probability (that is,
just as likely to happen as not to happen) to the occurrence of another
magnitude 7 or larger quake in the region during the next 50 years.
But in many places, the assumption of random occurrence with time may
not be true, because when the strain is released along one part of the
fault system, it may actually increase on another part. Four magnitude
6.8 or larger earthquakes and many magnitude 6-6.5 shocks occurred in
the San Francisco Bay region during the 75 years between 1836 and 1911.
For the next 68 years (until 1979), no earthquakes of magnitude 6 or
larger occurred in the region. Beginning with a magnitude 6.0 shock in
1979, the earthquake activity in the region increased dramatically;
between 1979 and 1989, there were four magnitude 6 or greater
earthquakes, including the magnitude 7.1 Loma Prieta earthquake. This
clustering of earthquakes leads scientists to estimate that the
probability of a magnitude 6.8 or larger earthquake occurring during the
next 30 years in the San Francisco Bay region is about 67 percent (twice
as likely as not).
Another way to estimate the likelihood of future earthquakes is to study
how fast strain accumulates. When plate movements build the strain in
rocks to a critical level, like pulling a rubber band too tight, the
rocks will suddenly break and slip to a new position. Scientists measure
how much strain accumulates along a fault segment each year, how much
time has passed since the last earthquake along the segment, and how
much strain was released in the last earthquake. This information is
then used to calculate the time required for the accumulating strain to
build to the level that results in an earthquake. This simple model is
complicated by the fact that such detailed information about faults is
rare. In the United States, only the San Andreas fault system has
adequate records for using this prediction method.
[Illustration: _Using a two-color laser to detect movement along a fault
near Parkfield, California._]
Public-domain text, read in full here on John Shaqi.
Reviews
Reviews
No reviews yet
Be the first to share your thoughts on this work.
Join the Discussion
Join the discussion
Sign in to leave a comment or review.
Sign InorCreate an account