Artificial and Natural FlightMaxim, Hiram S. (Hiram Stevens)
Science
Artificial and Natural Flight
Maxim, Hiram S. (Hiram Stevens)
Aeronautics; Airplanes; Flight
Before I commenced my experiments at Baldwyn’s Park, I attempted to
obtain some information in regard to the action of screw propellers
working in the air. I went to Paris and saw the apparatus which the
French Government employed for testing the efficiency of screw
propellers, but the propellers were so very badly made that the
experiments were of no value. Upon consulting an English experimenter,
who had made a “life-long study” of the question, he assured me that I
should find the screw propeller very inefficient and very wasteful of
power, and that all screw propellers had a powerful fan-blower action,
drawing in air at the centre and discharging it with great force at the
periphery. I found that no two men were agreed as to the action of screw
propellers. All the data or formulæ available were so confusing and
contradictory as to be of no value whatsoever. Some experimenters were
of the opinion that, in computing the thrust of a screw, we should only
consider the projected area of the blades, and that the thrust would be
equal to a wind blowing against a normal plane of equal area at a
velocity equal to the slip. Others were of the opinion that the whole
screw disc would have to be considered; that is, that the thrust would
be equal to a wind blowing against a normal plane having an area equal
to the whole disc, and at the velocity of the slip. The projected area
of the two screw blades of my machine is 94 square feet, and the area of
the two screw discs is 500 square feet. According to the first system of
reasoning, therefore, the screw thrust of my large machine, when running
at 40 miles an hour with a slip of 18 miles per hour, would have been,
according to the well-known formula,
V² × ·005 = P
18² × ·005 × 94 = 152·28 lbs.
If, however, we should have considered the whole screw disc, it would
have been 18² × ·005 × 500 = 810 lbs. However, when the machine was run
over the track at this rate, the thrust was found to be rather more than
2,000 lbs. When the machine was secured to the track and the screws
revolved until the pitch in feet, multiplied by the turns per minute,
was equal to 68 miles an hour, it was found that the screw thrust was
2,164 lbs. In this case, it was of course, all slip, and when the screws
had been making a few turns they had established a well-defined
air-current, and the power exerted by the engine was simply to maintain
this air current. It is interesting to note that, if we compute the
projected area of these blades by the foregoing formula, the thrust
would be--68² × ·005 × 94 = 2,173·28 lbs., which is almost exactly the
observed screw thrust.
Public-domain text, read in full here on John Shaqi.
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