ScienceIQ.com

Water, Water Everywhere, But Not A Drop To Drink

That line, from The Rime of the Ancient Mariner, by Samuel Taylor Coleridge, captures a truism -- we cannot drink salt water to quench our thirst. But why not? The answer lies in understanding the process of osmosis. Osmosis is the process whereby water molecules move from an area of higher concentration to an area of lower concentration. Osmosis ...

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WaterWater
Biology

Man-Eating Plants

What's for dinner? A bowl of salad greens, corn on the cob and strawberry shortcake for dessert. And it's not just us, most animals and insects love to munch, crunch and dine on plants. But there is a ... Continue reading

ManEatingPlants
Biology

A Tickle is All in the Timing

It's often been noted that no matter how hard you might try, you can't tickle yourself. Why not? Whether it's your finger or someone else's, a prod in the ribs is a prod in the ribs. Why should only ... Continue reading

Tickle
Astronomy

Pluto Is Way Out There

Long considered to be the smallest, coldest, and most distant planet from the Sun, Pluto may also be the largest of a group of objects that orbit in a disk-like zone of beyond the orbit of Neptune ... Continue reading

PlutoIsWayOutThere
Biology

How Blood Clots

Scabby knees and bruised shins are as much a part of growing up as climbing trees. Minor injuries from paper cuts to skinned elbows are nothing to worry about for most people, because the blood's ... Continue reading

BloodClots

Does Your Brain Do Flips?

BrainFlipsYou may not be aware of it, but when you look at the world, the image projected on your retina is upside down. This is due to the optics used by our eyes. Our brain compensates for this upside down view and everything seems perfectly normal to us.

Don't believe it? Do this simple experiment. Take a metal straight pin with a head, just like the one shown in the picture, and poke a hole in a 3x5 index card. Hold the hole in the index card very close to your eye and look through it. While looking through the hole, position the head of the pin very close to the card so you can see it through the hole. Can you see it? Isn't the pin upside down? Voila! What you are seeing is a shadow of the pin on your retina. Normally, when we see an object, light passes through our cornea and an image is formed on the retina. When you look at the pin through the pinhole, your cornea cannot focus the image because it's not designed to work over such short distances. You merely see a shadow image that appears on your retina right side up. Since your brain is trained to flip things you see, it flips the shadow of the pin upside down.

Interestingly enough, if you wear special glasses that invert the images you see, within a few days your brain will compensate and the world will appear right side up again!