ScienceIQ.com

Turning Oil Into Gas

When you see all those cars at the gas station filling up with unleaded, you may not stop to think about how that gasoline got there. It wasn't pumped out of the ground in that form. The same goes for jet airplane fuel. It didn't start out that way--it took a long refining process to become fuel. You could never fly an airplane with gasoline, but ...

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TurningOilIntoGas
Biology

Wise As An Owl

Are owls the smartest birds? According to trainers that work with them, not by a long shot. Parrots are easy to train and can have extensive vocabularies. Hawks can be taught to retrieve objects. Even ... Continue reading

WiseAsAnOwl
Astronomy

Exercising In Space

What did astronaut Shannon Lucid like least about her six months on Space Station Mir? The daily exercise. 'It was just downright hard,' she wrote in Scientific American (May 1998). 'I had to put on a ... Continue reading

ExercisingInSpace
Astronomy

GP-B: More Than Just a Pretty Face

Questions about the ways space, time, light and gravity relate to each other have been asked for eons. Theories have been offered, yet many puzzles remain to be solved. No spacecraft ever built has ... Continue reading

GPBMoreThanJustaPrettyFace
Biology

The Rapid Movement of the Soybean Rust Pathogen

Soybean rust, caused by the fungus Phakopsora pachyrhizi, results in soybean yield losses of up to 80%. Rust diseases are named for the orange powdery spores produced in leaf pustules. They are easily ... Continue reading

SoybeanRustPathogen

What Is A Half-life?

WhatIsAHalflifeWhen isotopes break down, or decay, they usually split apart into two smaller atoms. Excess neutrons and protons are often sent flying off through space, taking the excess energy of the atoms with them. Interestingly, one form of radioactive decay product is the 'alpha particle', which is in reality just a helium atom with no electrons. Measurement of the amount of radiation coming from decaying isotopes is observed to be exponential. That is, it does not decrease at a constant (linear) rate, but at an ever-decreasing rate that depends upon the amount of material remaining. Materials that decompose in this way are said to have a 'half-life'. That doesn't mean that they exist in some weird pseudo-reality. What it does mean is that it takes that amount of time for half of the material present to break down.

It is tempting to think that materials undergoing this decay process can only have two half-lives, in which the first half of the material decays followed by a similar period of time in which the second half of the material decays. This is not the case, however, because the rate at which decay occurs depends on the amount of material present. Thus, as the quantity of material present decreases, so does the actual rate at which the material decays.

In the first half-life period, one half of the original quantity of material decays and one half remains. During the second half-life period, one half of the remaining half decays, leaving one quarter of the original amount. After a third half-life period, one eighth of the original amount of material remains, and so on. In general mathematical terms, if the number of half-life periods is represented by 'n', and the original quantity of material is represented by 'x', then the amount of original material remaining at the end of that time is given by - M = (x/2) ^n, or (x/2 ^n)