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Oil Viscosity

Everybody recognizes 'oil' as a word for liquid materials that do not behave like water. They have a 'thickness' and self-cohesive character (autocohesion) that enables them to form a film on a surface. Oils have a characteristic feel when rubbed between one's thumb and forefinger. They are often compounds that have a high degree of hydrocarbon ...

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OilViscosity
Medicine

Your Friend, the Fat Cell

A healthy, adult human body contains about 35 billion fat cells. Each contains about 0.5 micrograms of fat. Stored fat is essential to good health. Fat is the body's principal energy reserve. It is ... Continue reading

FatCell
Engineering

GPS (Global Positioning System)

The GPS, or Global Positioning System, is the high-tech application of one of the most fundamental principles of geometry. Surveyors routinely use geometry and triangulation to map and lay out areas ... Continue reading

GPSGlobalPositioningSystem
Physics

How Fast is Mach 1?

A Mach number is a common ratio unit of speed when one is talking about aircrafts. By definition, the Mach number is a ratio of the speed of a body (aircraft) to the speed of sound in the undisturbed ... Continue reading

Mach1
Physics

Why Does A Golf Ball Have Dimples?

A golf ball can be driven great distances down the fairway. How is this possible? The answer to this question can be found by looking at the aerodynamic drag on a sphere without dimples (while it's ... Continue reading

GolfBallDimples

Somewhere Over Which Rainbow?

DoubleRainbowHow many rainbows are there really when we only see one during a rainstorm? The answer isn't as simple as you might think! Rainbows are formed when light enters a water droplet, reflects once inside the droplet, and is reflected back to our eyes. Each raindrop reflects and refracts the light that enters it in all possible ways. When light first hits the drop, a fraction of that light is reflected and the rest is transmitted through until it hits the backside of the drop on the inside. Again, some of that light is refracted and some is reflected. At each encounter with the surface inside the drop, some of the light is reflected and remains inside the drop, and the rest escapes. Therefore, light rays can escape after one, two, three or more internal reflections.

When you see two rainbows, the first or primary bow at 42 degrees, is brighter with red on the outside ending with violet on the inside. The secondary bow at 51 degrees is always fainter with the colors reversed due to the second reflection; violet on the outside ending with red on the inside. Isaac Newton derived a mathematical equation for the angular size of rainbows after a number (N) of reflections inside the droplet. He never solved the problem for N=3, since he decided that in the third pass there wouldn't be enough light for a person to actually see it. Edmund Halley, after whom Halley's comet was named, carried the calculations through and discovered that the tertiary rainbow would actually appear with an arc of 40 degrees and 20 seconds, and surprise! It should appear not opposite the sun but around the sun itself! For two thousand years, men had been looking for this arc in the wrong part of the sky!