ScienceIQ.com

For Want Of An O-Ring

Who can forget the Challenger disaster of 1986, the culprit, a failed O-ring. But what exactly is an O-ring and how did it cause the destruction of this space shuttle? When surfaces are flat, gaskets are used to form a tight seal. How about when the machined surfaces are not flat but round? The sealing function in that case is served by an O-ring. ...

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ForWantOfAnORing
Physics

What Is Radiofrequency Energy (Rf)?

Radiofrequency (RF) energy is another name for radio waves. It is one form of electromagnetic energy that makes up the electromagnetic spectrum. Some of the other forms of energy in the ... Continue reading

WhatIsRadiofrequencyEnergy
Biology

Bioenergy Basics

Biomass (organic matter) can be used to provide heat, make fuels, and generate electricity. This is called bioenergy. Wood, the largest source of bioenergy, has been used to provide heat for thousands ... Continue reading

BioenergyBasics
Astronomy

Neutron Stars

Ordinary matter, or the stuff we and everything around us is made of, consists largely of empty space. Even a rock is mostly empty space. This is because matter is made of atoms. An atom is a cloud of ... Continue reading

NeutronStars
Geology

Surprise! Lightning Has Big Effect On Atmospheric Chemistry

Scientists were surprised to learn summer lightning over the U.S. significantly increases regional ozone and other gases that affect air chemistry 3 to 8 miles above Earth's surface.The amounts of ... Continue reading

AtmosphericChemistry

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

ACMNatureAdvanced 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 endeavors. Most people get their first introduction to the world of ACMs through 'fiberglass', a composite material in which fine glass fibers are bound into a thick sheet of polyester resin. Relatively light and strong, fiberglass is one of the most generally useful and therefore most common of ACMs.

Any fiber can be used for ACMs, on the condition that the fiber material is compatible with the matrix material and visa versa. This relationship is essentially true, but in a practical sense only fibers that are easy to produce or that have certain properties see widespread use in ACMs. Similarly, only resins and plastics with certain properties of strength, durability, and formability see widespread use in ACMs. It goes without saying that the fiber materials and the matrix materials must not react chemically with each under under any circumstances.

ACMs are used in the air, for military aircraft undetectable by radar, planes that fly so fast that they must be maneuvered by actually changing the shape of their wings and body instead of by the use of standard flaps and rudders; on the ground, for cars weighing only a few hundred pounds and containing almost no metal parts at all; for bridges that can be assembled in a matter of hours from prefabricated parts, containing no metal parts or fasteners; and for high-traffic roadway constructed of plastic and glass fibers that carry the steady flow of vehicles smoothly across the rough terrain. And anyone who has ever watched Olympic competition has seen a broad range of equipment and material all made of ACMs. All these things are made possible through the use of advanced composite materials.