Artificial and Natural FlightMaxim, Hiram S. (Hiram Stevens)
Science
Artificial and Natural Flight
Maxim, Hiram S. (Hiram Stevens)
Aeronautics; Airplanes; Flight
Many experimenters have imagined that a screw is just as efficient
placed in front of a machine as at the rear, and it is quite probable
that, in the early days of steamships, a similar state of things
existed. For several years there were steamboats running on the Hudson
River, New York, with screws at their bows instead of at their stern.
Inventors of, and experimenters with, flying machines are not at all
agreed by any means in regard to the best position for the screw. It
would appear that many, having noticed that a horse-propelled carriage
always has the horse attached to the front, and that the carriage is
drawn instead of pushed, have come to the conclusion that, in a flying
machine, the screw ought, in the very nature of things, to be attached
to the front of the machine, so as to draw it through the air. Railway
trains have their propelling power in front, and why should it not be
the same with flying machines? But this is very bad reasoning. There is
but one place for the screw, and that is in the immediate wake, and in
the centre of the greatest atmospheric disturbance. While a machine is
running, although there is a marked difference between water and air as
far as skin friction is concerned, still the conditions are the same as
far as the _position_ of the screw is concerned. With a well-designed
steamship, the efficiency of the screw is so great as to be almost
unbelievable; in fact, if a steamship had never been made, and the
design of one should be placed before the leading mathematicians of
to-day, with the request that they should compute the efficiency of the
screw, none of them would come anywhere near the mark. They would make
it altogether too small. As before stated, when a steamship is being
driven through the water, the water adheres to its sides and is moved
forward by the ship--that is, it has acceleration imparted to it which
exactly corresponds to the power consumed in driving the ship through
the water. This, of course, retards it and we find in a well-designed
ship, not run above its natural speed, that about 80 per cent. of the
power of the engine is consumed in skin friction, or in imparting a
forward motion to the water. Suppose that we should take such a ship,
remove the screw, and tow it through the water with a very long wire
rope at a speed of, say, 20 miles an hour; we should find that the water
at the stern of the ship was moving forward at a velocity of fully 6
miles an hour--that is, travelling in the same direction as the ship. By
replacing the screw, and applying engine power sufficient to give the
ship the same speed of 20 miles an hour, identical results would be
produced. The skin friction still impels the water forward, so that the
screw, instead of running in stationary water, is actually running in
water moving in the same direction as the ship at a velocity of 6 miles
an hour. If the slip of the screw should only be equal to this forward
Public-domain text, read in full here on John Shaqi.
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