The Romance of Modern Invention: Containing Interesting Descriptions in Non-technical Language of Wireless Telegraphy, Liquid Air, Modern Artillery, Submarines, Dirigible Torpedoes, Solar Motors, Airships, &c. &c.Williams, Archibald
Science
The Romance of Modern Invention: Containing Interesting Descriptions in Non-technical Language of Wireless Telegraphy, Liquid Air, Modern Artillery, Submarines, Dirigible Torpedoes, Solar Motors, Airships, &c. &c.
Williams, Archibald
Inventions
He accordingly built a “whirling-table,” consisting of a long arm
mounted on a strong pivot at one end, and driven by a 10 horse-power
engine. To the free end, which described a circle of 200 feet in
circumference, he attached small aeroplanes, and by means of delicate
balances discovered that at 40 miles an hour the aeroplane would lift
133 lbs. per horse-power, and at 60 miles per hour every square foot
of surface sustained 8 lbs. weight. He, in common with other
experimenters on the same lines, became aware of the fact that if it
took a certain strain to suspend a stationary weight in the air, _to
advance it rapidly as well as to suspend it took a smaller strain_.
Now, as on sea and land, increased speed means a very rapid increase
in the force required, this is a point in favour of the
flying-machine. Professor Langley found that a brass plate weighing a
pound, when whirled at great speed, was supported in the air by a
pulling pressure of less than one ounce. And, of course, as the speed
increased the plate became more nearly horizontal, offering less
resistance to the air.
It is on this behaviour of the aeroplane that the hopes of Maxim and
others have been based. The swiftly moving aeroplane, coming
constantly on to fresh air, the inertia of which had not been
disturbed, would resemble the skater who can at high speed traverse
ice that would not bear him at rest.
Maxim next turned his attention to the construction of the aeroplanes
and engines. He made a special machine for testing fabrics, to decide
which would be most suitable for stretching over strong frames to form
the planes. The fabric must be light, very strong, and offer small
frictional resistance to the air. The testing-machine was fitted with
a nozzle, through which air was forced at a known pace on to the
substance under trial, which met the air current at a certain angle
and by means of indicators showed the strength of its “lift” or
tendency to rise, and that of its “drift” or tendency to move
horizontally in the direction of the air-current. A piece of tin,
mounted at an angle of one in ten to the air-current, showed a “lift”
of ten times its “drift.” This proportion was made the standard.
Experiments conducted on velvet, plush, silk, cotton and woollen goods
proved that the drift of crape was several times that of its lift, but
that fine linen had a lift equal to nine times its drift; while a
sample of Spencer’s balloon fabric was as good as tin.
Accordingly he selected this balloon fabric to stretch over light but
strong frames. The stretching of the material was no easy matter, as
uneven tension distorted it; but eventually the aeroplanes were
completed, tight as drumheads.
The large or central plane was 50 feet wide and 40 long; on either
side were auxiliary planes, five pairs; giving a total area of 5400
square feet.
Public-domain text, read in full here on John Shaqi.
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