Animal Locomotion; or, walking, swimming, and flying: With a dissertation on aëronauticsPettigrew, James Bell
Science
Animal Locomotion; or, walking, swimming, and flying: With a dissertation on aëronautics
Pettigrew, James Bell
Aeronautics; Animal locomotion
If, for example, I take a tapering elastic reed, as represented at
_a b_, and supply it with a flexible elastic sail (_c d_), and a
ball-and-socket joint (_x_), I have only to seize the reed at _a_
and cause it to oscillate upon _x_ to elicit all the wing movements.
By depressing the root of the reed in the direction _n e_, the wing
flies up as a kite in the direction _j f_. During the upward movement
the wing flies upwards and forwards, and describes a double curve. By
elevating the root of the reed in the direction _m a_, the wing flies
down as a kite in the direction _i b_. During the downward movement the
wing flies downwards and forwards, and describes a double curve. These
curves, when united, form a waved track, which represents progressive
flight. During the rise and fall of the wing a large amount of tractile
force is evolved, and if the wings and the body of the flying creature
are inclined slightly upwards, kite-fashion, as they invariably are
in ordinary flight, the whole mass of necessity moves upwards and
forwards. To this there is no exception. A sheet of paper or a card
will float along if its anterior margin is slightly raised, and if
it be projected with sufficient velocity. The wings of all flying
creatures when made to vibrate, twist and untwist, the posterior thin
margin of each wing twisting round the anterior thick one, like the
blade of a screw. The artificial wing represented at fig. 53 (p. 107)
does the same, _c d_ twisting round _a b_, and _g h_ round _e f_. The
natural and artificial wings, when elevated and depressed, describe a
figure-of-8 track in space when the bodies to which they are attached
are stationary. When the bodies advance, the figure-of-8 is opened out
to form first a looped and then a waved track. I have shown how those
insects, bats, and birds which flap their wings in a more or less
vertical direction evolve tractile or propelling power, and how this,
operating on properly constructed inclined surfaces, results in flight.
I wish now to show that flight may also be produced by a very oblique
and almost horizontal stroke of the wing, as in some insects, _e.g._
the wasp, blue-bottle, and other flies. In those insects the wing is
made to vibrate with a figure-of-8 sculling motion in a very oblique
direction, and with immense energy. This form of flight differs in no
respect from the other, unless in the direction of the stroke, and can
be readily imitated, as a reference to fig. 54 will show.
[Illustration: FIG. 54.]
Public-domain text, read in full here on John Shaqi.
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