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
_Rapidity of Wing Movements partly accounted for._--Much surprise has
been expressed at the enormous rapidity with which some wings are made
to vibrate. The wing of the insect is, as a rule, very long and narrow.
As a consequence, a comparatively slow and very limited movement at
the root confers great range and immense speed at the tip; the speed
of each portion of the wing increasing as the root of the wing is
receded from. This is explained on a principle well understood in
mechanics, viz. that when a rod hinged at one end is made to move in a
circle, the tip or free end of the rod describes a much wider circle
_in a given time_ than a portion of the rod nearer the hinge. This
principle is illustrated at fig. 56. Thus if _a b_ of fig. 56 be made
to represent the rod hinged at _x_, it travels through the space _d b
f_ in the same time it travels through _j k l_; and through _j k l_ in
the same time it travels through _g h i_; and through _g h i_ in the
same time it travels through _e a c_, which is the area occupied by
the thorax of the insect. If, however, the part of the rod _b_ travels
through the space _d b f_ in the same time that the part _a_ travels
through the space _e a c_, it follows of necessity that the portion of
the rod marked _a_ moves very much slower than that marked _b_. The
muscles of the insect are applied at the point _a_, as short levers
(the point referred to corresponding to the thorax of the insect), so
that a comparatively slow and limited movement at the root of the wing
produces the marvellous speed observed at the tip; the tip and body of
the wing being those portions which occasion the blur or impression
produced on the eye by the rapidly oscillating pinion (figs. 64, 65,
and 66, p. 139), But for this mode of augmenting the speed originally
inaugurated by the muscular system, it is difficult to comprehend how
the wings could be driven at the velocity attributed to them. The wing
of the blow-fly is said to make 300 strokes per second, _i.e._ 18,000
per minute. Now it appears to me that muscles to contract at the rate
of 18,000 times in the minute would be exhausted in a very few seconds,
a state of matters which would render the continuous flight of insects
impossible. (The heart contracts only between sixty and seventy times
in a minute.) I am, therefore, disposed to believe that the number of
contractions made by the thoracic muscles of insects has been greatly
overstated; the high speed at which the wing is made to vibrate being
due less to the separate and sudden contractions of the muscles at its
root than to the fact that the speed of the different parts of the wing
is increased in a direct ratio as the several parts are removed from
the driving point, as already explained. Speed is certainly a matter
of great importance in wing movements, as the elevating and propelling
power of the pinion depends to a great extent upon the rapidity with
which it is urged.
Public-domain text, read in full here on John Shaqi.
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