ScienceIQ.com

A Man-made 'Take' on Nature's Style

Advanced Composite Materials, (ACMs) are, as the name implies, composite materials. However, they consist exclusively of man-made specialty fibers bound in a matrix of plastics. The variety of such materials is nothing short of spectacular, and the development and application of new ACMs are among the fastest-growing sectors of modern technological ...

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ACMNature
Astronomy

Catch A Shooting Star

A meteor, sometimes called a 'shooting star,' can be the brightest object in the night sky, yet meteoroids are the smallest bodies in the solar system that can be observed by eye. Wandering through ... Continue reading

ShootingStar
Engineering

Pass the Basalt

Advanced composite materials technology is a field that is growing both quickly and steadily. That new fiber materials and applications will be developed is the proverbial 'no brainer'. However, ... Continue reading

PasstheBasalt
Geology

When This Lake 'Burps,' Better Watch Out!

Nearly twenty years ago, two lakes in Cameroon, a country in Africa, 'burped,' killing hundreds of people. What makes a lake burp? Lake Nyos and Lake Monoun are unusual lakes. They each formed in the ... Continue reading

LakeBurps
Medicine

Who was Typhoid Mary?

Mary Mallon lived in New York about 100 years ago, and worked as a cook. It seemed that every family she worked for suffered an outbreak of typhoid fever! The Dept. of Public Health found that she ... Continue reading

WhowasTyphoidMary

Fission and Fusion

FissionandFusionIn the nuclear fission process, a heavy atomic nucleus spontaneously splits apart, releasing energy and an energetic particle, and forms two smaller atomic nuclei. While this is a normal, natural process, it is in actuality an extremely rare process. Vastly more common is the opposite process of 'fusion', in which two very light atomic nuclei fuse together to form a heavier atomic nucleus. Every star in the universe works on this principle.

In the nuclear fusion process, the product formed is a helium nucleus consisting of two protons and two neutrons. Ironically, this is the same particle emitted by many radioactive materials when they decay. To form the helium nucleus through fusion requires the joining of two deuterium nuclei. Deuterium is an isotopic form of hydrogen in which each nucleus contains both a proton and a neutron rather than just the one proton of the normal hydrogen nucleus. A single helium nucleus represents a large energy difference relative to two separate deuterium nuclei, and as one might expect, a large amount of energy is released when nuclear fusion occurs. But there is also a very large energy barrier to be overcome in order to bring the deuterium nuclei together and make them fuse. Think of it as a switch that you have to hit with a very heavy hammer in order to get the lights to come one. In this case, the 'hammer' is an atomic bomb!

To trigger the nuclear fusion reaction that is the heart of the 'hydrogen bomb' requires the deuterium mass to be impacted by an explosive force equivalent to that of a conventional atomic bomb based on nuclear fission. The result is catastrophic.