Marvels of Scientific Invention: An Interesting Account in Non-Technical Language of the Invention of Guns, Torpedoes, Submarine Mines, Up-to-Date Smelting, Freezing, Colour Photography, and Many Other Recent Discoveries of ScienceCorbin, Thomas W.
Science
Marvels of Scientific Invention: An Interesting Account in Non-Technical Language of the Invention of Guns, Torpedoes, Submarine Mines, Up-to-Date Smelting, Freezing, Colour Photography, and Many Other Recent Discoveries of Science
Corbin, Thomas W.
Inventions
In many parts of the world these deposits of oil are obtained by sinking
wells and pumping up the oil. In others the liquid gushes out without
the necessity of pumping at all. This is believed to be due to the fact
that water pressure is at work. Artesian wells, from which the water
rushes of its own accord, are quite familiar, and are due to the fact
that some underground reservoir tapped by the well is fed through
natural pipes, really fissures in the rock, from some point higher than
the mouth of the well. Now supposing that a reservoir of oil were also
in communication with the upper world in the same way, the descending
water would go to the bottom, underneath the lighter oil, and would thus
lift it up, so that on being tapped the oil would rush out.
Another source of mineral oil is shale, such as is to be found in vast
deposits in the south-east of Scotland. This shale is mined much as coal
is: it is then heated in retorts as coal is heated at the gas-works: and
the vapour which is given off, on being condensed, forms a liquid like
crude petroleum.
In all these cases the original oil is a mixture of a great number of
grades differing from each other in various ways. They are all
"hydro-carbons," which means compounds of carbon and hydrogen, and they
extend from cymogene (the molecules of which contain four atoms of
carbon and ten of hydrogen) to paraffin wax, which has somewhere about
thirty-two of carbon to sixty-six of hydrogen. For practical purposes
their most important difference is the temperature at which they boil,
or turn quickly into vapour.
This forms the means by which they are sorted out. In a huge still, like
a steam-boiler, the crude or mixed oil is gradually heated, and the gas
given off is led to a cooling vessel where it is chilled back into
liquid. The lightest of all, cymogene, is given off even at the
freezing-point of water. That is led into one chamber and condensed
there. Then, as the temperature rises to 18° C., rhigolene is given off:
that is collected and condensed in another vessel. Between 70° and 120°
petroleum ether and petroleum naphtha are produced, and they together
constitute what is commonly called petrol. Between 120° and 150°
petroleum benzine arises. All the foregoing taken together constitute
about 8 to 10 per cent. of the whole crude oil. Then between 150° and
300° there comes off the great bulk of the oil, nearly 80 per cent., the
kerosene or paraffin which we burn in lamps. Above 300° there is
obtained another oil, which is used for lubrication, also the invaluable
vaseline, and finally, when the still is allowed to cool, there remains
a solid residuum known as paraffin wax. This process is known as
fractional distillation, and it will be noticed that it consists
essentially in collecting and liquefying separately those vapours which
are given off at different ranges of temperature. For our purpose in
this chapter we are mainly concerned with the petrol and the kerosene.
Public-domain text, read in full here on John Shaqi.
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