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The Richter Magnitude Scale

Seismic waves are the vibrations from earthquakes that travel through the Earth; they are recorded on instruments called seismographs. Seismographs record a zig-zag trace that shows the varying amplitude of ground oscillations beneath the instrument. Sensitive seismographs, which greatly magnify these ground motions, can detect strong earthquakes ...

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RichterScale
Astronomy

Hubble & Keck Teams Find Farthest Known Galaxy in Universe

An international team of astronomers may have set a new record in discovering what is the most distant known galaxy in the universe. Located an estimated 13 billion light-years away, the object is ... Continue reading

HubbleKeck
Astronomy

Solar Spitwads

Take a piece of paper. Make a little wad. If you're a kid, spit on it. Put it in a straw and blow hard. If your teacher sends you to the principal's office, here's your excuse: you were making a model ... Continue reading

SolarSpitwads
Astronomy

Astronomers Glimpse Feeding Of A Galactic Dragon

A team of radio astronomers has found a cold ring of gas around a supermassive black hole in the fiery nuclear region of quasar galaxy 'QSO I Zw 1,' the most detailed observational evidence yet that ... Continue reading

GalacticDragon
Astronomy

The Devil's In The Details

Did you ever make a mistake converting English numbers to metric numbers? Let's hope that your mistake didn't cost anyone $125 million dollars. That's what happened to NASA. The Mars Climate Orbiter's ... Continue reading

TheDevilsInTheDetails

Now You See It, Now You Don't

EMRadiationWhat we call light is simply a narrow band of electromagnetic radiation that our eyes are sensitive to. This radiation enters our eyes and is conveyed to the brain by the process we call sight. While the mechanics of seeing is quite complex, the process of seeing is, in a different sense, quite extraordinary. Here are two examples.

Have you ever used a telescope to view a distant object and realized that the image you are seeing is upside down? A telescope with convex lenses creates an upside down image. Your eyes do the same thing. As light enters your eye, it passes through your cornea and is focused by your lens onto the retina, which contains light-responsive cells called rods and cones. Because it works much in the same way as a telescope, the image projected on your retina is upside down. The optic nerves in the back of your eyes conveys this upside down image to your brain. But when you look at your cat, he's not walking on the ceiling. Thankfully, your brain does the switch for you, and flips the image.

Each of our eyes has a blind spot, a place on our retinas about the size of a pinhead where there are no rods or cones. Our blind spot is the place where our optic nerves exit the eye and connect to our brains. But we don't usually notice this blind spot. That is because our brains fill in the information for us. We think we see what we should be seeing. The trick, of course, is that as we move and focus our eyes, the blind spot is a moving target. Our brains can make a pretty good guess as to how to complete the picture of what we are looking at. To see your blind spot, follow the link to the larger image of the image on the right. Close your right eye and focus your left eye on the purple soccer ball. Now slowly move your head closer or farther from your computer screen. Can you make the orange soccer ball disappear? Then you've found your blind spot.