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Math On the Mind

In the mid-1800's, Paul Broca discovered that there were specialized functions for different regions in the human brain. He identified the third gyrus (the ridges on the surface of the cerebral cortex) of the prefrontal lobe as the center for speech production (later referred to as 'Broca's Area'). There is 'domain specificity' in the brain, which ...

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MathMind
Geology

A Big, Big Wave

A tsunami (pronounced 'soo-nah-mee') is a series of waves of extremely long wave length and long period generated in a body of water by an impulsive disturbance that vertically displaces the water. ... Continue reading

ABigBigWave
Medicine

The Incredible Capacity Of The Immune System

By age two, infants in the US can receive up to 20 vaccinations. In view of that, concerns had been raised that too many immunizations could overwhelm an infant's immune system. ... Continue reading

TheImmuneSystem
Biology

Beluga Whales

Beluga whales inhabit the Arctic and subarctic regions of Russia, Greenland, and North America. Some populations are strongly migratory, moving north in the spring and south in the fall as the ice ... Continue reading

BelugaWhales
Geology

The San Andreas Fault

Scientists have learned that the Earth's crust is fractured into a series of 'plates' that have been moving very slowly over the Earth's surface for millions of years. Two of these moving plates meet ... Continue reading

TheSanAndreasFault

Ultrasound In Medicine

UltrasoundInMedicineIn medical testing, ultrasound equipment is used to produce a sonogram, or a picture of organs inside the body. Ultrasound scanners do not use X-rays. They use waves of such high frequency that they cannot be heard. (Frequency is the number of sound wave cycles per second. The highest frequency humans can hear is 20 thousand Hertz. The sound waves used for ultrasound exams have a frequency of one to seven million Hertz.) The amount of energy they contain is low. The sound waves are made in a device called a transducer. It contains one or more quartz crystals that vibrate in response to an electrical current. This vibration changes electrical energy into the mechanical energy of sound.

When sound waves from the transducer enter the body, they travel through different materials at different speeds. When they hit a boundary between one kind of tissue and another--such as bone and muscle, or fluid and membrane--some bounce back, like an echo. The transducer receives those that bounce back, and the crystals work in reverse. They convert the mechanical energy of sound into an electrical current. A computer translates the electrical signals into a picture on a monitor. The picture is called a sonogram.

Ultrasound exams can yield several different kinds of information. Still pictures show individual structures inside the body. The pictures can be saved, enlarged, or printed just like any other photograph. Or, they can be viewed in rapid sequence, showing movement. Another type of sonogram is the Doppler. It works because sound waves bounce back to the transducer at a slightly different frequency than they had when they left it. The frequency shift can be used to produce colored images of problems such as clots in blood vessels or weaknesses in artery walls. Doppler techniques provide data on heart rate and blood flow.