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Newton's First Law of Motion

Sir Isaac Newton first presented his three laws of motion in the 'Principia Mathematica Philosophiae Naturalis' in 1686. His first law states that every object will remain at rest or in uniform motion in a straight line unless compelled to change its state by the action of an external force. This is normally taken as the definition of inertia. The ...

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NewtonsFirstLawofMotion
Medicine

The Plague

Plague is an infectious disease caused by the bacterium Yersinia pestis. The bacterium is found mainly in rodents, particularly rats, and in the fleas that feed on them. Other animals and humans ... Continue reading

ThePlague
Physics

The Fourth State of Matter

There are three classic states of matter: solid, liquid, and gas; however, plasma is considered by some scientists to be the fourth state of matter. The plasma state is not related to blood plasma, ... Continue reading

ForthState
Biology

How Do Cats See in the Dark?

Cats are nocturnal; therefore they need good night vision. Their eyes are able to function with 1/6 the light humans require. During the day, their eyes must be able to function without being ... Continue reading

CatEyesight
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

A Ring Around a Dying Star

ARingAroundaDyingStarIn November 2002, sky watchers were viewing the glow of meteors from the Leonid meteor shower burning up in Earth's atmosphere. They had been anticipating this celestial light show for months, expecting to see hundreds, possibly thousands, of meteors from a wayward comet light up the night sky. Engineers controlling NASA's Hubble Space Telescope had been anticipating the meteor storm, too, but for a different reason. They had to plan how to protect the telescope from a chance impact. Their plan was to turn the telescope's precise mirror away from the stream of comet debris. When they did so, they allowed Hubble to catch another kind of light show, a glowing donut-shaped object called a planetary nebula. A planetary nebula is not a planet but a dying star that has puffed glowing rings of gas into space. The closest and largest planetary nebula to Earth is the Helix nebula, located 650 light-years away.

During the Leonids, Hubble was pointing in the direction of the Helix. So clever Hubble astronomers took advantage of the opportunity by using the Advanced Camera for Surveys to view the nebula. They couldn't squeeze the entire nebula into one or even two snapshots. That would be like trying to squeeze the entire Grand Canyon into one or two pictures. Astronomers used Hubble to take pictures of different regions of the Helix, and then pieced them together like a mosaic to make one photograph. But that still wasn't enough. They had missed some of the nebula's edges. So they combined their mosaic with a wider photograph taken with the Mosaic Camera on the National Science Foundation's 0.9-meter telescope at Kitt Peak National Optical Astronomy Observatory.

The final portrait offers a dizzying look down what is actually a trillion-mile-long tunnel of glowing gases. The glowing tube is pointed nearly directly at Earth, appearing more like a bubble. A forest of thousands of comet-like tentacles embedded along the inner rim of the nebula points back toward the central star, which is a small but super-hot white dwarf that seems to float in a sea of blue gas [white dot in center of nebula]. These tentacles formed when a hot 'stellar wind' of gas plowed into colder shells of dust and gas ejected previously by the doomed star. These comet-like tentacles have been observed from ground-based telescopes for decades, but never have they been seen in such detail. They may actually lie in a disk encircling the hot star, like an animal's collar.