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The Limbic System

The limbic (meaning 'ring') system is virtually identical in all mammals. It sits above the brain stem, resembling a bagel with a finger (the brain stem) passing through it. This limbic 'system' comprises a large group of complex nuclei and oddly shaped smaller structures (with tongue-twisting names that seem designed to confuse rather than ...

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LimbicSystem
Astronomy

Amazing GRACE

Gravity has an effect on everyone and everything on Earth. Although we can't see it, smell it, taste it or touch it, we know it's there. Although scientists already know quite a bit about this ... Continue reading

AmazingGRACE
Astronomy

Dark Energy Changes the Universe

Dark energy has the cosmoslogists scratching their heads. Observations taken by NASA's Hubble Space Telescope and future space telescopes will be needed in order to determine the properties of dark ... Continue reading

DarkEnergyChangestheUniverse
Chemistry

What Give Batteries Their Charge?

There is in chemistry only one function that is of fundamental importance: the ability of atoms to share electrons. In any such sharing program, there must be electron donors and electron acceptors. ... Continue reading

WhatGiveBatteriesTheirCharge
Geology

Flipping Magnetic Fields

North and south. We take these directions for granted. Pull out a compass and the needle will swing to the north in response to the magnetism in the Earth's crust. The magnetic poles roughly coincide ... Continue reading

FlippingMagneticFields

Infrared Headphones

InfraredHeadphonesInfrared headphones use infrared light to carry an information signal from a transmitter to a receiver. Sounds simple enough, but the actual process is very complicated. The human ear gathers sound as compression waves pass through and distort the air. These sympathetic distortions produce resonant vibrations in parts of the ear, which in turn trigger nerve impulses that are interpreted by the brain as various sounds. In no way is the human ear equipped to utilize either electrical impulses or beams of light as sound sources. Earphones 'translate' information from these sources into something that we can hear. In typical headphones, an electrical signal travels from the signal source to a pair of tiny speakers. The speakers contain a diaphragm attached to an electromagnet. As current through the electromagnet varies with the electrical signal from the source, the diaphragm vibrates in response. These vibrations translate through the air in the wearer's ear passages and into the ear.

In wireless headphones, the signal is carried by a beam of infrared light, rather than by solid wires. This requires the action of a 'translator' in the sending unit to convert the electrical signal from the source into a stream of data that can be expressed with infrared light. It also requires the action of an 'interpreter' in the receiving unit to convert the infrared data stream back into an electrical signal that will drive the small speakers of the headphones.

As a data carrying device, an infrared light source may seem quite limited. It can, after all, have only two operating states: 'on' and 'off'. Yet this simple limitation lends itself perfectly to digital transmission. In this mode, the analog signal from the source can be translated into a series of 'on' and 'off' signals, forming a digital data stream. Alternatively, the infrared light can serve as the carrier for a modulated signal. The modulation pattern of the light can mimic the on and off signals of the digital data stream. However the infrared light is utilized, it is emitted from the source, effectively 'broadcasting' its content, to be picked up by a receiving unit. The receiving unit is the infrared sensor on the TV, the VCR or DVD machine, or on the infrared headphone set. The transmitted signal thus captured is electronically 'decoded' and converted back into the corresponding electrical impulses that drive the tiny speakers in the headset.