ScienceIQ.com

All That Glitters

Gold is called a 'noble' metal because it does not oxidize under ordinary conditions. Its chemical symbol Au is derived from the Latin word 'aurum.' In pure form gold has a metallic luster and is sun yellow, but mixtures of other metals, such as silver, copper, nickel, platinum, palladium, tellurium, and iron, with gold create various color hues ...

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AllThatGlitters
Engineering

Dress Sizes The Scientific Way

In pre-industrial America, most clothing was crafted at home or by professional tailors or dressmakers from individual measurements taken of each customer. In the early Twentieth Century, the growing ... Continue reading

DressSizesTheScientificWay
Physics

Single Molecule Electroluminescence

Incandescence and luminescence are two main ways of producing light. In incandescence, electric current is passed through a conductor (filament of a light bulb for example). The resistance to the ... Continue reading

Electroluminescence
Astronomy

Light Fantastic

On the next hot summer day, imagine what would happen if the Sun suddenly became one million times brighter. Ice cream would quickly melt, sunscreen lotion wouldn't work very well, and that's just the ... Continue reading

LightFantastic
Biology

Leading Killer Wears Two Faces

Diabetes is the 6th leading cause of death in the United States. About 17 million people (6.2% of the population) have diabetes. But the disease usually wears two faces. Type 1 diabetes affects young ... Continue reading

Diabetes

Silent Earthquakes

SilentEarthquakesTry this demonstration of earthquake movement. Shape modeling clay into two blocks or get two firm sponge blocks. Press the sides of the blocks together while trying to slide them slowly past each other. You may notice that they stick at first, then suddenly slide. This is much like what happens when earth's plates (large sections of earth's solid upper layers) are forced past each other causing earthquakes, whether one plate slides and bumps past another or one moves over the other. However, slow moving 'silent' quakes have been discovered occurring deep beneath Washington state and British Columbia, Canada. Here the Juan de Fuca Plate is being forced below the North American plate, but the movement has been so slow, it was not originally detected by seismograph analysis. It was data from the satellites in the GPS (Global Positioning System) that detected the very slight movements of stations on the ground.

Far offshore from Oregon, Washington, and British Columbia, the Pacific Plate and the Juan de Fuca Plate are being forced apart by convection currents in earth's mantle. (See the ScienceIQ Geology fact on Plate Tectonics from 11/02.) This moves the Juan de Fuca plate eastward where it collides with and is subducted under the North American plate. But not all parts of the massive plates move equally. Deeper in the earth, the subducted portion of the plate becomes pliable as it is heated, and it moves more easily, while colder, shallower sections of the plate get stuck, and pressure continually builds. This would be like forcing your fingers into a narrow opening. Some fingers might slide in easily, but you would feel pressure build up on the stuck fingers. The continued sliding of the moving fingers - or plate sections - does not reduce total stress because it causes stress to increase in the locked zones.

Since plate movement in the pliable regions is so slow, the massive earthquake energy is also being released very slowly, and no quaking is noticed. Scientists think the energy being released is equivalent to what would normally occur during a 6 to 7 magnitude quake, but is being released over weeks, not seconds, so the smaller quakes are much less powerful. The end result, however, may not be less destructive earthquakes. Since pressure builds up in the locked zones of plate boundaries, the energy may later be released in a quake of much greater magnitude. If the movement occurred at the western edge of the Juan de Fuca plate, devastating tsunamis could be generated and the entire region would be shaken. Such a release is believed to occur somewhere along the Juan de Fuca's boundaries about every 500 years in massive 8 or 9 magnitude earthquakes. The sensitive GPS detection of even very slight surface movements may provide a means of predicting such quakes, allowing advance warning.